1 /* Xtensa-specific support for 32-bit ELF.
2 Copyright (C) 2003-2025 Free Software Foundation, Inc.
4 This file is part of BFD, the Binary File Descriptor library.
6 This program is free software; you can redistribute it and/or
7 modify it under the terms of the GNU General Public License as
8 published by the Free Software Foundation; either version 3 of the
9 License, or (at your option) any later version.
11 This program is distributed in the hope that it will be useful, but
12 WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14 General Public License for more details.
16 You should have received a copy of the GNU General Public License
17 along with this program; if not, write to the Free Software
18 Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston, MA
30 #include "elf/xtensa.h"
31 #include "splay-tree.h"
32 #include "xtensa-isa.h"
33 #include "xtensa-dynconfig.h"
35 /* All users of this file have bfd_octets_per_byte (abfd, sec) == 1. */
36 #define OCTETS_PER_BYTE(ABFD, SEC) 1
38 #define XTENSA_NO_NOP_REMOVAL 0
40 #ifndef XTHAL_ABI_UNDEFINED
41 #define XTHAL_ABI_UNDEFINED -1
44 /* Local helper functions. */
46 static bool add_extra_plt_sections (struct bfd_link_info
*, int);
47 static char *vsprint_msg (const char *, const char *, int, ...) ATTRIBUTE_PRINTF(2,4);
48 static bfd_reloc_status_type bfd_elf_xtensa_reloc
49 (bfd
*, arelent
*, asymbol
*, void *, asection
*, bfd
*, char **);
50 static bool do_fix_for_relocatable_link
51 (Elf_Internal_Rela
*, bfd
*, asection
*, bfd_byte
*);
52 static void do_fix_for_final_link
53 (Elf_Internal_Rela
*, bfd
*, asection
*, bfd_byte
*, bfd_vma
*);
55 /* Local functions to handle Xtensa configurability. */
57 static bool is_indirect_call_opcode (xtensa_opcode
);
58 static bool is_direct_call_opcode (xtensa_opcode
);
59 static bool is_windowed_call_opcode (xtensa_opcode
);
60 static xtensa_opcode
get_const16_opcode (void);
61 static xtensa_opcode
get_l32r_opcode (void);
62 static bfd_vma
l32r_offset (bfd_vma
, bfd_vma
);
63 static int get_relocation_opnd (xtensa_opcode
, int);
64 static int get_relocation_slot (int);
65 static xtensa_opcode get_relocation_opcode
66 (bfd
*, asection
*, bfd_byte
*, Elf_Internal_Rela
*);
67 static bool is_l32r_relocation
68 (bfd
*, asection
*, bfd_byte
*, Elf_Internal_Rela
*);
69 static bool is_alt_relocation (int);
70 static bool is_operand_relocation (int);
71 static bfd_size_type insn_decode_len
72 (bfd_byte
*, bfd_size_type
, bfd_size_type
);
73 static int insn_num_slots
74 (bfd_byte
*, bfd_size_type
, bfd_size_type
);
75 static xtensa_opcode insn_decode_opcode
76 (bfd_byte
*, bfd_size_type
, bfd_size_type
, int);
77 static bool check_branch_target_aligned
78 (bfd_byte
*, bfd_size_type
, bfd_vma
, bfd_vma
);
79 static bool check_loop_aligned
80 (bfd_byte
*, bfd_size_type
, bfd_vma
, bfd_vma
);
81 static bool check_branch_target_aligned_address (bfd_vma
, int);
82 static bfd_size_type get_asm_simplify_size
83 (bfd_byte
*, bfd_size_type
, bfd_size_type
);
85 /* Functions for link-time code simplifications. */
87 static bfd_reloc_status_type elf_xtensa_do_asm_simplify
88 (bfd_byte
*, bfd_vma
, bfd_vma
, char **);
89 static bfd_reloc_status_type contract_asm_expansion
90 (bfd_byte
*, bfd_vma
, Elf_Internal_Rela
*, char **);
91 static xtensa_opcode
swap_callx_for_call_opcode (xtensa_opcode
);
92 static xtensa_opcode
get_expanded_call_opcode (bfd_byte
*, int, bool *);
94 /* Access to internal relocations, section contents and symbols. */
96 static Elf_Internal_Rela
*retrieve_internal_relocs
97 (bfd
*, asection
*, bool);
98 static void pin_internal_relocs (asection
*, Elf_Internal_Rela
*);
99 static void release_internal_relocs (asection
*, Elf_Internal_Rela
*);
100 static bfd_byte
*retrieve_contents (bfd
*, asection
*, bool);
101 static void pin_contents (asection
*, bfd_byte
*);
102 static void release_contents (asection
*, bfd_byte
*);
103 static Elf_Internal_Sym
*retrieve_local_syms (bfd
*);
105 /* Miscellaneous utility functions. */
107 static asection
*elf_xtensa_get_plt_section (struct bfd_link_info
*, int);
108 static asection
*elf_xtensa_get_gotplt_section (struct bfd_link_info
*, int);
109 static asection
*get_elf_r_symndx_section (bfd
*, unsigned long);
110 static struct elf_link_hash_entry
*get_elf_r_symndx_hash_entry
111 (bfd
*, unsigned long);
112 static bfd_vma
get_elf_r_symndx_offset (bfd
*, unsigned long);
113 static bool is_reloc_sym_weak (bfd
*, Elf_Internal_Rela
*);
114 static bool pcrel_reloc_fits (xtensa_opcode
, int, bfd_vma
, bfd_vma
);
115 static bool xtensa_is_property_section (asection
*);
116 static bool xtensa_is_insntable_section (asection
*);
117 static bool xtensa_is_littable_section (asection
*);
118 static bool xtensa_is_proptable_section (asection
*);
119 static int internal_reloc_compare (const void *, const void *);
120 static int internal_reloc_matches (const void *, const void *);
121 static asection
*xtensa_get_property_section (asection
*, const char *);
122 static flagword
xtensa_get_property_predef_flags (asection
*);
124 /* Other functions called directly by the linker. */
126 typedef void (*deps_callback_t
)
127 (asection
*, bfd_vma
, asection
*, bfd_vma
, void *);
128 extern bool xtensa_callback_required_dependence
129 (bfd
*, asection
*, struct bfd_link_info
*, deps_callback_t
, void *);
132 /* Globally visible flag for choosing size optimization of NOP removal
133 instead of branch-target-aware minimization for NOP removal.
134 When nonzero, narrow all instructions and remove all NOPs possible
135 around longcall expansions. */
137 int elf32xtensa_size_opt
;
140 /* The "new_section_hook" is used to set up a per-section
141 "xtensa_relax_info" data structure with additional information used
142 during relaxation. */
144 typedef struct xtensa_relax_info_struct xtensa_relax_info
;
147 /* The GNU tools do not easily allow extending interfaces to pass around
148 the pointer to the Xtensa ISA information, so instead we add a global
149 variable here (in BFD) that can be used by any of the tools that need
152 xtensa_isa xtensa_default_isa
;
155 /* When this is true, relocations may have been modified to refer to
156 symbols from other input files. The per-section list of "fix"
157 records needs to be checked when resolving relocations. */
159 static bool relaxing_section
= false;
161 /* When this is true, during final links, literals that cannot be
162 coalesced and their relocations may be moved to other sections. */
164 int elf32xtensa_no_literal_movement
= 1;
166 /* Place property records for a section into individual property section
167 with xt.prop. prefix. */
169 bool elf32xtensa_separate_props
= false;
171 /* Xtensa ABI. It affects PLT entry code. */
173 int elf32xtensa_abi
= XTHAL_ABI_UNDEFINED
;
175 /* Rename one of the generic section flags to better document how it
177 /* Whether relocations have been processed. */
178 #define reloc_done sec_flg0
180 static reloc_howto_type elf_howto_table
[] =
182 HOWTO (R_XTENSA_NONE
, 0, 0, 0, false, 0, complain_overflow_dont
,
183 bfd_elf_xtensa_reloc
, "R_XTENSA_NONE",
185 HOWTO (R_XTENSA_32
, 0, 4, 32, false, 0, complain_overflow_bitfield
,
186 bfd_elf_xtensa_reloc
, "R_XTENSA_32",
187 true, 0xffffffff, 0xffffffff, false),
189 /* Replace a 32-bit value with a value from the runtime linker (only
190 used by linker-generated stub functions). The r_addend value is
191 special: 1 means to substitute a pointer to the runtime linker's
192 dynamic resolver function; 2 means to substitute the link map for
193 the shared object. */
194 HOWTO (R_XTENSA_RTLD
, 0, 4, 32, false, 0, complain_overflow_dont
,
195 NULL
, "R_XTENSA_RTLD", false, 0, 0, false),
197 HOWTO (R_XTENSA_GLOB_DAT
, 0, 4, 32, false, 0, complain_overflow_bitfield
,
198 bfd_elf_generic_reloc
, "R_XTENSA_GLOB_DAT",
199 false, 0, 0xffffffff, false),
200 HOWTO (R_XTENSA_JMP_SLOT
, 0, 4, 32, false, 0, complain_overflow_bitfield
,
201 bfd_elf_generic_reloc
, "R_XTENSA_JMP_SLOT",
202 false, 0, 0xffffffff, false),
203 HOWTO (R_XTENSA_RELATIVE
, 0, 4, 32, false, 0, complain_overflow_bitfield
,
204 bfd_elf_generic_reloc
, "R_XTENSA_RELATIVE",
205 false, 0, 0xffffffff, false),
206 HOWTO (R_XTENSA_PLT
, 0, 4, 32, false, 0, complain_overflow_bitfield
,
207 bfd_elf_xtensa_reloc
, "R_XTENSA_PLT",
208 false, 0, 0xffffffff, false),
212 /* Old relocations for backward compatibility. */
213 HOWTO (R_XTENSA_OP0
, 0, 0, 0, true, 0, complain_overflow_dont
,
214 bfd_elf_xtensa_reloc
, "R_XTENSA_OP0", false, 0, 0, true),
215 HOWTO (R_XTENSA_OP1
, 0, 0, 0, true, 0, complain_overflow_dont
,
216 bfd_elf_xtensa_reloc
, "R_XTENSA_OP1", false, 0, 0, true),
217 HOWTO (R_XTENSA_OP2
, 0, 0, 0, true, 0, complain_overflow_dont
,
218 bfd_elf_xtensa_reloc
, "R_XTENSA_OP2", false, 0, 0, true),
220 /* Assembly auto-expansion. */
221 HOWTO (R_XTENSA_ASM_EXPAND
, 0, 0, 0, true, 0, complain_overflow_dont
,
222 bfd_elf_xtensa_reloc
, "R_XTENSA_ASM_EXPAND", false, 0, 0, true),
223 /* Relax assembly auto-expansion. */
224 HOWTO (R_XTENSA_ASM_SIMPLIFY
, 0, 0, 0, true, 0, complain_overflow_dont
,
225 bfd_elf_xtensa_reloc
, "R_XTENSA_ASM_SIMPLIFY", false, 0, 0, true),
229 HOWTO (R_XTENSA_32_PCREL
, 0, 4, 32, true, 0, complain_overflow_bitfield
,
230 bfd_elf_xtensa_reloc
, "R_XTENSA_32_PCREL",
231 false, 0, 0xffffffff, true),
233 /* GNU extension to record C++ vtable hierarchy. */
234 HOWTO (R_XTENSA_GNU_VTINHERIT
, 0, 4, 0, false, 0, complain_overflow_dont
,
235 NULL
, "R_XTENSA_GNU_VTINHERIT",
237 /* GNU extension to record C++ vtable member usage. */
238 HOWTO (R_XTENSA_GNU_VTENTRY
, 0, 4, 0, false, 0, complain_overflow_dont
,
239 _bfd_elf_rel_vtable_reloc_fn
, "R_XTENSA_GNU_VTENTRY",
242 /* Relocations for supporting difference of symbols. */
243 HOWTO (R_XTENSA_DIFF8
, 0, 1, 8, false, 0, complain_overflow_signed
,
244 bfd_elf_xtensa_reloc
, "R_XTENSA_DIFF8", false, 0, 0xff, false),
245 HOWTO (R_XTENSA_DIFF16
, 0, 2, 16, false, 0, complain_overflow_signed
,
246 bfd_elf_xtensa_reloc
, "R_XTENSA_DIFF16", false, 0, 0xffff, false),
247 HOWTO (R_XTENSA_DIFF32
, 0, 4, 32, false, 0, complain_overflow_signed
,
248 bfd_elf_xtensa_reloc
, "R_XTENSA_DIFF32", false, 0, 0xffffffff, false),
250 /* General immediate operand relocations. */
251 HOWTO (R_XTENSA_SLOT0_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
252 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT0_OP", false, 0, 0, true),
253 HOWTO (R_XTENSA_SLOT1_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
254 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT1_OP", false, 0, 0, true),
255 HOWTO (R_XTENSA_SLOT2_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
256 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT2_OP", false, 0, 0, true),
257 HOWTO (R_XTENSA_SLOT3_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
258 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT3_OP", false, 0, 0, true),
259 HOWTO (R_XTENSA_SLOT4_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
260 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT4_OP", false, 0, 0, true),
261 HOWTO (R_XTENSA_SLOT5_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
262 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT5_OP", false, 0, 0, true),
263 HOWTO (R_XTENSA_SLOT6_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
264 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT6_OP", false, 0, 0, true),
265 HOWTO (R_XTENSA_SLOT7_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
266 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT7_OP", false, 0, 0, true),
267 HOWTO (R_XTENSA_SLOT8_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
268 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT8_OP", false, 0, 0, true),
269 HOWTO (R_XTENSA_SLOT9_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
270 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT9_OP", false, 0, 0, true),
271 HOWTO (R_XTENSA_SLOT10_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
272 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT10_OP", false, 0, 0, true),
273 HOWTO (R_XTENSA_SLOT11_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
274 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT11_OP", false, 0, 0, true),
275 HOWTO (R_XTENSA_SLOT12_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
276 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT12_OP", false, 0, 0, true),
277 HOWTO (R_XTENSA_SLOT13_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
278 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT13_OP", false, 0, 0, true),
279 HOWTO (R_XTENSA_SLOT14_OP
, 0, 0, 0, true, 0, complain_overflow_dont
,
280 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT14_OP", false, 0, 0, true),
282 /* "Alternate" relocations. The meaning of these is opcode-specific. */
283 HOWTO (R_XTENSA_SLOT0_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
284 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT0_ALT", false, 0, 0, true),
285 HOWTO (R_XTENSA_SLOT1_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
286 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT1_ALT", false, 0, 0, true),
287 HOWTO (R_XTENSA_SLOT2_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
288 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT2_ALT", false, 0, 0, true),
289 HOWTO (R_XTENSA_SLOT3_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
290 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT3_ALT", false, 0, 0, true),
291 HOWTO (R_XTENSA_SLOT4_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
292 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT4_ALT", false, 0, 0, true),
293 HOWTO (R_XTENSA_SLOT5_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
294 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT5_ALT", false, 0, 0, true),
295 HOWTO (R_XTENSA_SLOT6_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
296 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT6_ALT", false, 0, 0, true),
297 HOWTO (R_XTENSA_SLOT7_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
298 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT7_ALT", false, 0, 0, true),
299 HOWTO (R_XTENSA_SLOT8_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
300 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT8_ALT", false, 0, 0, true),
301 HOWTO (R_XTENSA_SLOT9_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
302 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT9_ALT", false, 0, 0, true),
303 HOWTO (R_XTENSA_SLOT10_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
304 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT10_ALT", false, 0, 0, true),
305 HOWTO (R_XTENSA_SLOT11_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
306 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT11_ALT", false, 0, 0, true),
307 HOWTO (R_XTENSA_SLOT12_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
308 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT12_ALT", false, 0, 0, true),
309 HOWTO (R_XTENSA_SLOT13_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
310 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT13_ALT", false, 0, 0, true),
311 HOWTO (R_XTENSA_SLOT14_ALT
, 0, 0, 0, true, 0, complain_overflow_dont
,
312 bfd_elf_xtensa_reloc
, "R_XTENSA_SLOT14_ALT", false, 0, 0, true),
314 /* TLS relocations. */
315 HOWTO (R_XTENSA_TLSDESC_FN
, 0, 4, 32, false, 0, complain_overflow_dont
,
316 bfd_elf_xtensa_reloc
, "R_XTENSA_TLSDESC_FN",
317 false, 0, 0xffffffff, false),
318 HOWTO (R_XTENSA_TLSDESC_ARG
, 0, 4, 32, false, 0, complain_overflow_dont
,
319 bfd_elf_xtensa_reloc
, "R_XTENSA_TLSDESC_ARG",
320 false, 0, 0xffffffff, false),
321 HOWTO (R_XTENSA_TLS_DTPOFF
, 0, 4, 32, false, 0, complain_overflow_dont
,
322 bfd_elf_xtensa_reloc
, "R_XTENSA_TLS_DTPOFF",
323 false, 0, 0xffffffff, false),
324 HOWTO (R_XTENSA_TLS_TPOFF
, 0, 4, 32, false, 0, complain_overflow_dont
,
325 bfd_elf_xtensa_reloc
, "R_XTENSA_TLS_TPOFF",
326 false, 0, 0xffffffff, false),
327 HOWTO (R_XTENSA_TLS_FUNC
, 0, 0, 0, false, 0, complain_overflow_dont
,
328 bfd_elf_xtensa_reloc
, "R_XTENSA_TLS_FUNC",
330 HOWTO (R_XTENSA_TLS_ARG
, 0, 0, 0, false, 0, complain_overflow_dont
,
331 bfd_elf_xtensa_reloc
, "R_XTENSA_TLS_ARG",
333 HOWTO (R_XTENSA_TLS_CALL
, 0, 0, 0, false, 0, complain_overflow_dont
,
334 bfd_elf_xtensa_reloc
, "R_XTENSA_TLS_CALL",
337 HOWTO (R_XTENSA_PDIFF8
, 0, 1, 8, false, 0, complain_overflow_bitfield
,
338 bfd_elf_xtensa_reloc
, "R_XTENSA_PDIFF8", false, 0, 0xff, false),
339 HOWTO (R_XTENSA_PDIFF16
, 0, 2, 16, false, 0, complain_overflow_bitfield
,
340 bfd_elf_xtensa_reloc
, "R_XTENSA_PDIFF16", false, 0, 0xffff, false),
341 HOWTO (R_XTENSA_PDIFF32
, 0, 4, 32, false, 0, complain_overflow_bitfield
,
342 bfd_elf_xtensa_reloc
, "R_XTENSA_PDIFF32", false, 0, 0xffffffff, false),
344 HOWTO (R_XTENSA_NDIFF8
, 0, 1, 8, false, 0, complain_overflow_bitfield
,
345 bfd_elf_xtensa_reloc
, "R_XTENSA_NDIFF8", false, 0, 0xff, false),
346 HOWTO (R_XTENSA_NDIFF16
, 0, 2, 16, false, 0, complain_overflow_bitfield
,
347 bfd_elf_xtensa_reloc
, "R_XTENSA_NDIFF16", false, 0, 0xffff, false),
348 HOWTO (R_XTENSA_NDIFF32
, 0, 4, 32, false, 0, complain_overflow_bitfield
,
349 bfd_elf_xtensa_reloc
, "R_XTENSA_NDIFF32", false, 0, 0xffffffff, false),
354 fprintf (stderr, "Xtensa bfd reloc lookup %d (%s)\n", code, str)
359 static reloc_howto_type
*
360 elf_xtensa_reloc_type_lookup (bfd
*abfd ATTRIBUTE_UNUSED
,
361 bfd_reloc_code_real_type code
)
366 TRACE ("BFD_RELOC_NONE");
367 return &elf_howto_table
[(unsigned) R_XTENSA_NONE
];
370 TRACE ("BFD_RELOC_32");
371 return &elf_howto_table
[(unsigned) R_XTENSA_32
];
373 case BFD_RELOC_32_PCREL
:
374 TRACE ("BFD_RELOC_32_PCREL");
375 return &elf_howto_table
[(unsigned) R_XTENSA_32_PCREL
];
377 case BFD_RELOC_XTENSA_DIFF8
:
378 TRACE ("BFD_RELOC_XTENSA_DIFF8");
379 return &elf_howto_table
[(unsigned) R_XTENSA_DIFF8
];
381 case BFD_RELOC_XTENSA_DIFF16
:
382 TRACE ("BFD_RELOC_XTENSA_DIFF16");
383 return &elf_howto_table
[(unsigned) R_XTENSA_DIFF16
];
385 case BFD_RELOC_XTENSA_DIFF32
:
386 TRACE ("BFD_RELOC_XTENSA_DIFF32");
387 return &elf_howto_table
[(unsigned) R_XTENSA_DIFF32
];
389 case BFD_RELOC_XTENSA_PDIFF8
:
390 TRACE ("BFD_RELOC_XTENSA_PDIFF8");
391 return &elf_howto_table
[(unsigned) R_XTENSA_PDIFF8
];
393 case BFD_RELOC_XTENSA_PDIFF16
:
394 TRACE ("BFD_RELOC_XTENSA_PDIFF16");
395 return &elf_howto_table
[(unsigned) R_XTENSA_PDIFF16
];
397 case BFD_RELOC_XTENSA_PDIFF32
:
398 TRACE ("BFD_RELOC_XTENSA_PDIFF32");
399 return &elf_howto_table
[(unsigned) R_XTENSA_PDIFF32
];
401 case BFD_RELOC_XTENSA_NDIFF8
:
402 TRACE ("BFD_RELOC_XTENSA_NDIFF8");
403 return &elf_howto_table
[(unsigned) R_XTENSA_NDIFF8
];
405 case BFD_RELOC_XTENSA_NDIFF16
:
406 TRACE ("BFD_RELOC_XTENSA_NDIFF16");
407 return &elf_howto_table
[(unsigned) R_XTENSA_NDIFF16
];
409 case BFD_RELOC_XTENSA_NDIFF32
:
410 TRACE ("BFD_RELOC_XTENSA_NDIFF32");
411 return &elf_howto_table
[(unsigned) R_XTENSA_NDIFF32
];
413 case BFD_RELOC_XTENSA_RTLD
:
414 TRACE ("BFD_RELOC_XTENSA_RTLD");
415 return &elf_howto_table
[(unsigned) R_XTENSA_RTLD
];
417 case BFD_RELOC_XTENSA_GLOB_DAT
:
418 TRACE ("BFD_RELOC_XTENSA_GLOB_DAT");
419 return &elf_howto_table
[(unsigned) R_XTENSA_GLOB_DAT
];
421 case BFD_RELOC_XTENSA_JMP_SLOT
:
422 TRACE ("BFD_RELOC_XTENSA_JMP_SLOT");
423 return &elf_howto_table
[(unsigned) R_XTENSA_JMP_SLOT
];
425 case BFD_RELOC_XTENSA_RELATIVE
:
426 TRACE ("BFD_RELOC_XTENSA_RELATIVE");
427 return &elf_howto_table
[(unsigned) R_XTENSA_RELATIVE
];
429 case BFD_RELOC_XTENSA_PLT
:
430 TRACE ("BFD_RELOC_XTENSA_PLT");
431 return &elf_howto_table
[(unsigned) R_XTENSA_PLT
];
433 case BFD_RELOC_XTENSA_OP0
:
434 TRACE ("BFD_RELOC_XTENSA_OP0");
435 return &elf_howto_table
[(unsigned) R_XTENSA_OP0
];
437 case BFD_RELOC_XTENSA_OP1
:
438 TRACE ("BFD_RELOC_XTENSA_OP1");
439 return &elf_howto_table
[(unsigned) R_XTENSA_OP1
];
441 case BFD_RELOC_XTENSA_OP2
:
442 TRACE ("BFD_RELOC_XTENSA_OP2");
443 return &elf_howto_table
[(unsigned) R_XTENSA_OP2
];
445 case BFD_RELOC_XTENSA_ASM_EXPAND
:
446 TRACE ("BFD_RELOC_XTENSA_ASM_EXPAND");
447 return &elf_howto_table
[(unsigned) R_XTENSA_ASM_EXPAND
];
449 case BFD_RELOC_XTENSA_ASM_SIMPLIFY
:
450 TRACE ("BFD_RELOC_XTENSA_ASM_SIMPLIFY");
451 return &elf_howto_table
[(unsigned) R_XTENSA_ASM_SIMPLIFY
];
453 case BFD_RELOC_VTABLE_INHERIT
:
454 TRACE ("BFD_RELOC_VTABLE_INHERIT");
455 return &elf_howto_table
[(unsigned) R_XTENSA_GNU_VTINHERIT
];
457 case BFD_RELOC_VTABLE_ENTRY
:
458 TRACE ("BFD_RELOC_VTABLE_ENTRY");
459 return &elf_howto_table
[(unsigned) R_XTENSA_GNU_VTENTRY
];
461 case BFD_RELOC_XTENSA_TLSDESC_FN
:
462 TRACE ("BFD_RELOC_XTENSA_TLSDESC_FN");
463 return &elf_howto_table
[(unsigned) R_XTENSA_TLSDESC_FN
];
465 case BFD_RELOC_XTENSA_TLSDESC_ARG
:
466 TRACE ("BFD_RELOC_XTENSA_TLSDESC_ARG");
467 return &elf_howto_table
[(unsigned) R_XTENSA_TLSDESC_ARG
];
469 case BFD_RELOC_XTENSA_TLS_DTPOFF
:
470 TRACE ("BFD_RELOC_XTENSA_TLS_DTPOFF");
471 return &elf_howto_table
[(unsigned) R_XTENSA_TLS_DTPOFF
];
473 case BFD_RELOC_XTENSA_TLS_TPOFF
:
474 TRACE ("BFD_RELOC_XTENSA_TLS_TPOFF");
475 return &elf_howto_table
[(unsigned) R_XTENSA_TLS_TPOFF
];
477 case BFD_RELOC_XTENSA_TLS_FUNC
:
478 TRACE ("BFD_RELOC_XTENSA_TLS_FUNC");
479 return &elf_howto_table
[(unsigned) R_XTENSA_TLS_FUNC
];
481 case BFD_RELOC_XTENSA_TLS_ARG
:
482 TRACE ("BFD_RELOC_XTENSA_TLS_ARG");
483 return &elf_howto_table
[(unsigned) R_XTENSA_TLS_ARG
];
485 case BFD_RELOC_XTENSA_TLS_CALL
:
486 TRACE ("BFD_RELOC_XTENSA_TLS_CALL");
487 return &elf_howto_table
[(unsigned) R_XTENSA_TLS_CALL
];
490 if (code
>= BFD_RELOC_XTENSA_SLOT0_OP
491 && code
<= BFD_RELOC_XTENSA_SLOT14_OP
)
493 unsigned n
= (R_XTENSA_SLOT0_OP
+
494 (code
- BFD_RELOC_XTENSA_SLOT0_OP
));
495 return &elf_howto_table
[n
];
498 if (code
>= BFD_RELOC_XTENSA_SLOT0_ALT
499 && code
<= BFD_RELOC_XTENSA_SLOT14_ALT
)
501 unsigned n
= (R_XTENSA_SLOT0_ALT
+
502 (code
- BFD_RELOC_XTENSA_SLOT0_ALT
));
503 return &elf_howto_table
[n
];
509 /* xgettext:c-format */
510 _bfd_error_handler (_("%pB: unsupported relocation type %#x"), abfd
, (int) code
);
511 bfd_set_error (bfd_error_bad_value
);
516 static reloc_howto_type
*
517 elf_xtensa_reloc_name_lookup (bfd
*abfd ATTRIBUTE_UNUSED
,
522 for (i
= 0; i
< sizeof (elf_howto_table
) / sizeof (elf_howto_table
[0]); i
++)
523 if (elf_howto_table
[i
].name
!= NULL
524 && strcasecmp (elf_howto_table
[i
].name
, r_name
) == 0)
525 return &elf_howto_table
[i
];
531 /* Given an ELF "rela" relocation, find the corresponding howto and record
532 it in the BFD internal arelent representation of the relocation. */
535 elf_xtensa_info_to_howto_rela (bfd
*abfd
,
537 Elf_Internal_Rela
*dst
)
539 unsigned int r_type
= ELF32_R_TYPE (dst
->r_info
);
541 if (r_type
>= (unsigned int) R_XTENSA_max
)
543 /* xgettext:c-format */
544 _bfd_error_handler (_("%pB: unsupported relocation type %#x"),
546 bfd_set_error (bfd_error_bad_value
);
549 cache_ptr
->howto
= &elf_howto_table
[r_type
];
554 /* Functions for the Xtensa ELF linker. */
556 /* The name of the dynamic interpreter. This is put in the .interp
559 #define ELF_DYNAMIC_INTERPRETER "/lib/ld.so"
561 /* The size in bytes of an entry in the procedure linkage table.
562 (This does _not_ include the space for the literals associated with
565 #define PLT_ENTRY_SIZE 16
567 /* For _really_ large PLTs, we may need to alternate between literals
568 and code to keep the literals within the 256K range of the L32R
569 instructions in the code. It's unlikely that anyone would ever need
570 such a big PLT, but an arbitrary limit on the PLT size would be bad.
571 Thus, we split the PLT into chunks. Since there's very little
572 overhead (2 extra literals) for each chunk, the chunk size is kept
573 small so that the code for handling multiple chunks get used and
574 tested regularly. With 254 entries, there are 1K of literals for
575 each chunk, and that seems like a nice round number. */
577 #define PLT_ENTRIES_PER_CHUNK 254
579 /* PLT entries are actually used as stub functions for lazy symbol
580 resolution. Once the symbol is resolved, the stub function is never
581 invoked. Note: the 32-byte frame size used here cannot be changed
582 without a corresponding change in the runtime linker. */
584 static const bfd_byte elf_xtensa_be_plt_entry
[][PLT_ENTRY_SIZE
] =
587 0x6c, 0x10, 0x04, /* entry sp, 32 */
588 0x18, 0x00, 0x00, /* l32r a8, [got entry for rtld's resolver] */
589 0x1a, 0x00, 0x00, /* l32r a10, [got entry for rtld's link map] */
590 0x1b, 0x00, 0x00, /* l32r a11, [literal for reloc index] */
591 0x0a, 0x80, 0x00, /* jx a8 */
595 0x18, 0x00, 0x00, /* l32r a8, [got entry for rtld's resolver] */
596 0x1a, 0x00, 0x00, /* l32r a10, [got entry for rtld's link map] */
597 0x1b, 0x00, 0x00, /* l32r a11, [literal for reloc index] */
598 0x0a, 0x80, 0x00, /* jx a8 */
603 static const bfd_byte elf_xtensa_le_plt_entry
[][PLT_ENTRY_SIZE
] =
606 0x36, 0x41, 0x00, /* entry sp, 32 */
607 0x81, 0x00, 0x00, /* l32r a8, [got entry for rtld's resolver] */
608 0xa1, 0x00, 0x00, /* l32r a10, [got entry for rtld's link map] */
609 0xb1, 0x00, 0x00, /* l32r a11, [literal for reloc index] */
610 0xa0, 0x08, 0x00, /* jx a8 */
614 0x81, 0x00, 0x00, /* l32r a8, [got entry for rtld's resolver] */
615 0xa1, 0x00, 0x00, /* l32r a10, [got entry for rtld's link map] */
616 0xb1, 0x00, 0x00, /* l32r a11, [literal for reloc index] */
617 0xa0, 0x08, 0x00, /* jx a8 */
622 /* The size of the thread control block. */
625 struct elf_xtensa_link_hash_entry
627 struct elf_link_hash_entry elf
;
629 bfd_signed_vma tlsfunc_refcount
;
631 #define GOT_UNKNOWN 0
633 #define GOT_TLS_GD 2 /* global or local dynamic */
634 #define GOT_TLS_IE 4 /* initial or local exec */
635 #define GOT_TLS_ANY (GOT_TLS_GD | GOT_TLS_IE)
636 unsigned char tls_type
;
639 #define elf_xtensa_hash_entry(ent) ((struct elf_xtensa_link_hash_entry *)(ent))
641 struct elf_xtensa_obj_tdata
643 struct elf_obj_tdata root
;
645 /* tls_type for each local got entry. */
646 char *local_got_tls_type
;
648 bfd_signed_vma
*local_tlsfunc_refcounts
;
651 #define elf_xtensa_tdata(abfd) \
652 ((struct elf_xtensa_obj_tdata *) (abfd)->tdata.any)
654 #define elf_xtensa_local_got_tls_type(abfd) \
655 (elf_xtensa_tdata (abfd)->local_got_tls_type)
657 #define elf_xtensa_local_tlsfunc_refcounts(abfd) \
658 (elf_xtensa_tdata (abfd)->local_tlsfunc_refcounts)
660 #define is_xtensa_elf(bfd) \
661 (bfd_get_flavour (bfd) == bfd_target_elf_flavour \
662 && elf_tdata (bfd) != NULL \
663 && elf_object_id (bfd) == XTENSA_ELF_DATA)
666 elf_xtensa_mkobject (bfd
*abfd
)
668 return bfd_elf_allocate_object (abfd
, sizeof (struct elf_xtensa_obj_tdata
));
671 /* Xtensa ELF linker hash table. */
673 struct elf_xtensa_link_hash_table
675 struct elf_link_hash_table elf
;
677 /* Short-cuts to get to dynamic linker sections. */
679 asection
*spltlittbl
;
681 /* Total count of PLT relocations seen during check_relocs.
682 The actual PLT code must be split into multiple sections and all
683 the sections have to be created before size_dynamic_sections,
684 where we figure out the exact number of PLT entries that will be
685 needed. It is OK if this count is an overestimate, e.g., some
686 relocations may be removed by GC. */
689 struct elf_xtensa_link_hash_entry
*tlsbase
;
692 /* Get the Xtensa ELF linker hash table from a link_info structure. */
694 #define elf_xtensa_hash_table(p) \
695 ((is_elf_hash_table ((p)->hash) \
696 && elf_hash_table_id (elf_hash_table (p)) == XTENSA_ELF_DATA) \
697 ? (struct elf_xtensa_link_hash_table *) (p)->hash : NULL)
699 /* Create an entry in an Xtensa ELF linker hash table. */
701 static struct bfd_hash_entry
*
702 elf_xtensa_link_hash_newfunc (struct bfd_hash_entry
*entry
,
703 struct bfd_hash_table
*table
,
706 /* Allocate the structure if it has not already been allocated by a
710 entry
= bfd_hash_allocate (table
,
711 sizeof (struct elf_xtensa_link_hash_entry
));
716 /* Call the allocation method of the superclass. */
717 entry
= _bfd_elf_link_hash_newfunc (entry
, table
, string
);
720 struct elf_xtensa_link_hash_entry
*eh
= elf_xtensa_hash_entry (entry
);
721 eh
->tlsfunc_refcount
= 0;
722 eh
->tls_type
= GOT_UNKNOWN
;
728 /* Create an Xtensa ELF linker hash table. */
730 static struct bfd_link_hash_table
*
731 elf_xtensa_link_hash_table_create (bfd
*abfd
)
733 struct elf_link_hash_entry
*tlsbase
;
734 struct elf_xtensa_link_hash_table
*ret
;
735 size_t amt
= sizeof (struct elf_xtensa_link_hash_table
);
737 ret
= bfd_zmalloc (amt
);
741 if (!_bfd_elf_link_hash_table_init (&ret
->elf
, abfd
,
742 elf_xtensa_link_hash_newfunc
,
743 sizeof (struct elf_xtensa_link_hash_entry
)))
749 /* Create a hash entry for "_TLS_MODULE_BASE_" to speed up checking
751 tlsbase
= elf_link_hash_lookup (&ret
->elf
, "_TLS_MODULE_BASE_",
753 tlsbase
->root
.type
= bfd_link_hash_new
;
754 tlsbase
->root
.u
.undef
.abfd
= NULL
;
755 tlsbase
->non_elf
= 0;
756 ret
->elf
.dt_pltgot_required
= true;
757 ret
->tlsbase
= elf_xtensa_hash_entry (tlsbase
);
758 ret
->tlsbase
->tls_type
= GOT_UNKNOWN
;
760 return &ret
->elf
.root
;
763 /* Copy the extra info we tack onto an elf_link_hash_entry. */
766 elf_xtensa_copy_indirect_symbol (struct bfd_link_info
*info
,
767 struct elf_link_hash_entry
*dir
,
768 struct elf_link_hash_entry
*ind
)
770 struct elf_xtensa_link_hash_entry
*edir
, *eind
;
772 edir
= elf_xtensa_hash_entry (dir
);
773 eind
= elf_xtensa_hash_entry (ind
);
775 if (ind
->root
.type
== bfd_link_hash_indirect
)
777 edir
->tlsfunc_refcount
+= eind
->tlsfunc_refcount
;
778 eind
->tlsfunc_refcount
= 0;
780 if (dir
->got
.refcount
<= 0)
782 edir
->tls_type
= eind
->tls_type
;
783 eind
->tls_type
= GOT_UNKNOWN
;
787 _bfd_elf_link_hash_copy_indirect (info
, dir
, ind
);
791 elf_xtensa_dynamic_symbol_p (struct elf_link_hash_entry
*h
,
792 struct bfd_link_info
*info
)
794 /* Check if we should do dynamic things to this symbol. The
795 "ignore_protected" argument need not be set, because Xtensa code
796 does not require special handling of STV_PROTECTED to make function
797 pointer comparisons work properly. The PLT addresses are never
798 used for function pointers. */
800 return _bfd_elf_dynamic_symbol_p (h
, info
, 0);
805 property_table_compare (const void *ap
, const void *bp
)
807 const property_table_entry
*a
= (const property_table_entry
*) ap
;
808 const property_table_entry
*b
= (const property_table_entry
*) bp
;
810 if (a
->address
== b
->address
)
812 if (a
->size
!= b
->size
)
813 return (a
->size
- b
->size
);
815 if ((a
->flags
& XTENSA_PROP_ALIGN
) != (b
->flags
& XTENSA_PROP_ALIGN
))
816 return ((b
->flags
& XTENSA_PROP_ALIGN
)
817 - (a
->flags
& XTENSA_PROP_ALIGN
));
819 if ((a
->flags
& XTENSA_PROP_ALIGN
)
820 && (GET_XTENSA_PROP_ALIGNMENT (a
->flags
)
821 != GET_XTENSA_PROP_ALIGNMENT (b
->flags
)))
822 return (GET_XTENSA_PROP_ALIGNMENT (a
->flags
)
823 - GET_XTENSA_PROP_ALIGNMENT (b
->flags
));
825 if ((a
->flags
& XTENSA_PROP_UNREACHABLE
)
826 != (b
->flags
& XTENSA_PROP_UNREACHABLE
))
827 return ((b
->flags
& XTENSA_PROP_UNREACHABLE
)
828 - (a
->flags
& XTENSA_PROP_UNREACHABLE
));
830 return (a
->flags
- b
->flags
);
833 return (a
->address
- b
->address
);
838 property_table_matches (const void *ap
, const void *bp
)
840 const property_table_entry
*a
= (const property_table_entry
*) ap
;
841 const property_table_entry
*b
= (const property_table_entry
*) bp
;
843 /* Check if one entry overlaps with the other. */
844 if ((b
->address
>= a
->address
&& b
->address
< (a
->address
+ a
->size
))
845 || (a
->address
>= b
->address
&& a
->address
< (b
->address
+ b
->size
)))
848 return (a
->address
- b
->address
);
852 /* Get the literal table or property table entries for the given
853 section. Sets TABLE_P and returns the number of entries. On
854 error, returns a negative value. */
857 xtensa_read_table_entries (bfd
*abfd
,
859 property_table_entry
**table_p
,
860 const char *sec_name
,
863 asection
*table_section
;
864 bfd_size_type table_size
= 0;
865 bfd_byte
*table_data
;
866 property_table_entry
*blocks
;
867 int blk
, block_count
;
868 bfd_size_type num_records
;
869 Elf_Internal_Rela
*internal_relocs
, *irel
, *rel_end
;
870 bfd_vma section_addr
, off
;
871 flagword predef_flags
;
872 bfd_size_type table_entry_size
, section_limit
;
874 if (bfd_get_flavour (abfd
) != bfd_target_elf_flavour
876 || !(section
->flags
& SEC_ALLOC
)
877 || (section
->flags
& SEC_DEBUGGING
))
883 table_section
= xtensa_get_property_section (section
, sec_name
);
885 table_size
= table_section
->size
;
893 predef_flags
= xtensa_get_property_predef_flags (table_section
);
894 table_entry_size
= 12;
896 table_entry_size
-= 4;
898 num_records
= table_size
/ table_entry_size
;
900 table_data
= retrieve_contents (abfd
, table_section
, true);
901 if (table_data
== NULL
)
907 blocks
= (property_table_entry
*)
908 bfd_malloc (num_records
* sizeof (property_table_entry
));
912 section_addr
= section
->output_section
->vma
+ section
->output_offset
;
914 section_addr
= section
->vma
;
916 internal_relocs
= retrieve_internal_relocs (abfd
, table_section
, true);
917 if (internal_relocs
&& !table_section
->reloc_done
)
919 qsort (internal_relocs
, table_section
->reloc_count
,
920 sizeof (Elf_Internal_Rela
), internal_reloc_compare
);
921 irel
= internal_relocs
;
926 section_limit
= bfd_get_section_limit (abfd
, section
);
927 rel_end
= internal_relocs
+ table_section
->reloc_count
;
929 for (off
= 0; off
< table_size
; off
+= table_entry_size
)
931 bfd_vma address
= bfd_get_32 (abfd
, table_data
+ off
);
933 /* Skip any relocations before the current offset. This should help
934 avoid confusion caused by unexpected relocations for the preceding
937 (irel
->r_offset
< off
938 || (irel
->r_offset
== off
939 && ELF32_R_TYPE (irel
->r_info
) == R_XTENSA_NONE
)))
946 if (irel
&& irel
->r_offset
== off
)
949 unsigned long r_symndx
= ELF32_R_SYM (irel
->r_info
);
950 BFD_ASSERT (ELF32_R_TYPE (irel
->r_info
) == R_XTENSA_32
);
952 if (get_elf_r_symndx_section (abfd
, r_symndx
) != section
)
955 sym_off
= get_elf_r_symndx_offset (abfd
, r_symndx
);
956 BFD_ASSERT (sym_off
== 0);
957 address
+= (section_addr
+ sym_off
+ irel
->r_addend
);
961 if (address
< section_addr
962 || address
>= section_addr
+ section_limit
)
966 blocks
[block_count
].address
= address
;
967 blocks
[block_count
].size
= bfd_get_32 (abfd
, table_data
+ off
+ 4);
969 blocks
[block_count
].flags
= predef_flags
;
971 blocks
[block_count
].flags
= bfd_get_32 (abfd
, table_data
+ off
+ 8);
975 release_contents (table_section
, table_data
);
976 release_internal_relocs (table_section
, internal_relocs
);
980 /* Now sort them into address order for easy reference. */
981 qsort (blocks
, block_count
, sizeof (property_table_entry
),
982 property_table_compare
);
984 /* Check that the table contents are valid. Problems may occur,
985 for example, if an unrelocated object file is stripped. */
986 for (blk
= 1; blk
< block_count
; blk
++)
988 /* The only circumstance where two entries may legitimately
989 have the same address is when one of them is a zero-size
990 placeholder to mark a place where fill can be inserted.
991 The zero-size entry should come first. */
992 if (blocks
[blk
- 1].address
== blocks
[blk
].address
&&
993 blocks
[blk
- 1].size
!= 0)
995 /* xgettext:c-format */
996 _bfd_error_handler (_("%pB(%pA): invalid property table"),
998 bfd_set_error (bfd_error_bad_value
);
1010 static property_table_entry
*
1011 elf_xtensa_find_property_entry (property_table_entry
*property_table
,
1012 int property_table_size
,
1015 property_table_entry entry
;
1016 property_table_entry
*rv
;
1018 if (property_table_size
== 0)
1021 entry
.address
= addr
;
1025 rv
= bsearch (&entry
, property_table
, property_table_size
,
1026 sizeof (property_table_entry
), property_table_matches
);
1032 elf_xtensa_in_literal_pool (property_table_entry
*lit_table
,
1036 if (elf_xtensa_find_property_entry (lit_table
, lit_table_size
, addr
))
1043 /* Look through the relocs for a section during the first phase, and
1044 calculate needed space in the dynamic reloc sections. */
1047 elf_xtensa_check_relocs (bfd
*abfd
,
1048 struct bfd_link_info
*info
,
1050 const Elf_Internal_Rela
*relocs
)
1052 struct elf_xtensa_link_hash_table
*htab
;
1053 Elf_Internal_Shdr
*symtab_hdr
;
1054 struct elf_link_hash_entry
**sym_hashes
;
1055 const Elf_Internal_Rela
*rel
;
1056 const Elf_Internal_Rela
*rel_end
;
1058 if (bfd_link_relocatable (info
))
1061 BFD_ASSERT (is_xtensa_elf (abfd
));
1063 htab
= elf_xtensa_hash_table (info
);
1067 symtab_hdr
= &elf_tdata (abfd
)->symtab_hdr
;
1068 sym_hashes
= elf_sym_hashes (abfd
);
1070 rel_end
= relocs
+ sec
->reloc_count
;
1071 for (rel
= relocs
; rel
< rel_end
; rel
++)
1073 unsigned int r_type
;
1075 struct elf_link_hash_entry
*h
= NULL
;
1076 struct elf_xtensa_link_hash_entry
*eh
;
1077 int tls_type
, old_tls_type
;
1078 bool is_got
= false;
1079 bool is_plt
= false;
1080 bool is_tlsfunc
= false;
1082 r_symndx
= ELF32_R_SYM (rel
->r_info
);
1083 r_type
= ELF32_R_TYPE (rel
->r_info
);
1085 if (r_symndx
>= NUM_SHDR_ENTRIES (symtab_hdr
))
1087 /* xgettext:c-format */
1088 _bfd_error_handler (_("%pB: bad symbol index: %d"),
1093 if (r_symndx
>= symtab_hdr
->sh_info
)
1095 h
= sym_hashes
[r_symndx
- symtab_hdr
->sh_info
];
1096 while (h
->root
.type
== bfd_link_hash_indirect
1097 || h
->root
.type
== bfd_link_hash_warning
)
1098 h
= (struct elf_link_hash_entry
*) h
->root
.u
.i
.link
;
1100 eh
= elf_xtensa_hash_entry (h
);
1104 case R_XTENSA_TLSDESC_FN
:
1105 if (bfd_link_dll (info
))
1107 tls_type
= GOT_TLS_GD
;
1112 tls_type
= GOT_TLS_IE
;
1115 case R_XTENSA_TLSDESC_ARG
:
1116 if (bfd_link_dll (info
))
1118 tls_type
= GOT_TLS_GD
;
1123 tls_type
= GOT_TLS_IE
;
1124 if (h
&& elf_xtensa_hash_entry (h
) != htab
->tlsbase
1125 && elf_xtensa_dynamic_symbol_p (h
, info
))
1130 case R_XTENSA_TLS_DTPOFF
:
1131 if (bfd_link_dll (info
))
1132 tls_type
= GOT_TLS_GD
;
1134 tls_type
= GOT_TLS_IE
;
1137 case R_XTENSA_TLS_TPOFF
:
1138 tls_type
= GOT_TLS_IE
;
1139 if (bfd_link_pic (info
))
1140 info
->flags
|= DF_STATIC_TLS
;
1141 if (bfd_link_dll (info
) || elf_xtensa_dynamic_symbol_p (h
, info
))
1146 tls_type
= GOT_NORMAL
;
1151 tls_type
= GOT_NORMAL
;
1155 case R_XTENSA_GNU_VTINHERIT
:
1156 /* This relocation describes the C++ object vtable hierarchy.
1157 Reconstruct it for later use during GC. */
1158 if (!bfd_elf_gc_record_vtinherit (abfd
, sec
, h
, rel
->r_offset
))
1162 case R_XTENSA_GNU_VTENTRY
:
1163 /* This relocation describes which C++ vtable entries are actually
1164 used. Record for later use during GC. */
1165 if (!bfd_elf_gc_record_vtentry (abfd
, sec
, h
, rel
->r_addend
))
1170 /* Nothing to do for any other relocations. */
1178 if (h
->plt
.refcount
<= 0)
1181 h
->plt
.refcount
= 1;
1184 h
->plt
.refcount
+= 1;
1186 /* Keep track of the total PLT relocation count even if we
1187 don't yet know whether the dynamic sections will be
1189 htab
->plt_reloc_count
+= 1;
1191 if (elf_hash_table (info
)->dynamic_sections_created
)
1193 if (! add_extra_plt_sections (info
, htab
->plt_reloc_count
))
1199 if (h
->got
.refcount
<= 0)
1200 h
->got
.refcount
= 1;
1202 h
->got
.refcount
+= 1;
1206 eh
->tlsfunc_refcount
+= 1;
1208 old_tls_type
= eh
->tls_type
;
1212 /* Allocate storage the first time. */
1213 if (elf_local_got_refcounts (abfd
) == NULL
)
1215 bfd_size_type size
= symtab_hdr
->sh_info
;
1218 mem
= bfd_zalloc (abfd
, size
* sizeof (bfd_signed_vma
));
1221 elf_local_got_refcounts (abfd
) = (bfd_signed_vma
*) mem
;
1223 mem
= bfd_zalloc (abfd
, size
);
1226 elf_xtensa_local_got_tls_type (abfd
) = (char *) mem
;
1228 mem
= bfd_zalloc (abfd
, size
* sizeof (bfd_signed_vma
));
1231 elf_xtensa_local_tlsfunc_refcounts (abfd
)
1232 = (bfd_signed_vma
*) mem
;
1235 /* This is a global offset table entry for a local symbol. */
1236 if (is_got
|| is_plt
)
1237 elf_local_got_refcounts (abfd
) [r_symndx
] += 1;
1240 elf_xtensa_local_tlsfunc_refcounts (abfd
) [r_symndx
] += 1;
1242 old_tls_type
= elf_xtensa_local_got_tls_type (abfd
) [r_symndx
];
1245 if ((old_tls_type
& GOT_TLS_IE
) && (tls_type
& GOT_TLS_IE
))
1246 tls_type
|= old_tls_type
;
1247 /* If a TLS symbol is accessed using IE at least once,
1248 there is no point to use a dynamic model for it. */
1249 else if (old_tls_type
!= tls_type
&& old_tls_type
!= GOT_UNKNOWN
1250 && ((old_tls_type
& GOT_TLS_GD
) == 0
1251 || (tls_type
& GOT_TLS_IE
) == 0))
1253 if ((old_tls_type
& GOT_TLS_IE
) && (tls_type
& GOT_TLS_GD
))
1254 tls_type
= old_tls_type
;
1255 else if ((old_tls_type
& GOT_TLS_GD
) && (tls_type
& GOT_TLS_GD
))
1256 tls_type
|= old_tls_type
;
1260 /* xgettext:c-format */
1261 (_("%pB: `%s' accessed both as normal and thread local symbol"),
1263 h
? h
->root
.root
.string
: "<local>");
1268 if (old_tls_type
!= tls_type
)
1271 eh
->tls_type
= tls_type
;
1273 elf_xtensa_local_got_tls_type (abfd
) [r_symndx
] = tls_type
;
1282 elf_xtensa_make_sym_local (struct bfd_link_info
*info
,
1283 struct elf_link_hash_entry
*h
)
1285 if (bfd_link_pic (info
))
1287 if (h
->plt
.refcount
> 0)
1289 /* For shared objects, there's no need for PLT entries for local
1290 symbols (use RELATIVE relocs instead of JMP_SLOT relocs). */
1291 if (h
->got
.refcount
< 0)
1292 h
->got
.refcount
= 0;
1293 h
->got
.refcount
+= h
->plt
.refcount
;
1294 h
->plt
.refcount
= 0;
1299 /* Don't need any dynamic relocations at all. */
1300 h
->plt
.refcount
= 0;
1301 h
->got
.refcount
= 0;
1307 elf_xtensa_hide_symbol (struct bfd_link_info
*info
,
1308 struct elf_link_hash_entry
*h
,
1311 /* For a shared link, move the plt refcount to the got refcount to leave
1312 space for RELATIVE relocs. */
1313 elf_xtensa_make_sym_local (info
, h
);
1315 _bfd_elf_link_hash_hide_symbol (info
, h
, force_local
);
1319 /* Return the section that should be marked against GC for a given
1323 elf_xtensa_gc_mark_hook (asection
*sec
,
1324 struct bfd_link_info
*info
,
1325 Elf_Internal_Rela
*rel
,
1326 struct elf_link_hash_entry
*h
,
1327 Elf_Internal_Sym
*sym
)
1329 /* Property sections are marked "KEEP" in the linker scripts, but they
1330 should not cause other sections to be marked. (This approach relies
1331 on elf_xtensa_discard_info to remove property table entries that
1332 describe discarded sections. Alternatively, it might be more
1333 efficient to avoid using "KEEP" in the linker scripts and instead use
1334 the gc_mark_extra_sections hook to mark only the property sections
1335 that describe marked sections. That alternative does not work well
1336 with the current property table sections, which do not correspond
1337 one-to-one with the sections they describe, but that should be fixed
1339 if (xtensa_is_property_section (sec
))
1343 switch (ELF32_R_TYPE (rel
->r_info
))
1345 case R_XTENSA_GNU_VTINHERIT
:
1346 case R_XTENSA_GNU_VTENTRY
:
1350 return _bfd_elf_gc_mark_hook (sec
, info
, rel
, h
, sym
);
1354 /* Create all the dynamic sections. */
1357 elf_xtensa_create_dynamic_sections (bfd
*dynobj
, struct bfd_link_info
*info
)
1359 struct elf_xtensa_link_hash_table
*htab
;
1360 flagword flags
, noalloc_flags
;
1362 htab
= elf_xtensa_hash_table (info
);
1366 /* First do all the standard stuff. */
1367 if (! _bfd_elf_create_dynamic_sections (dynobj
, info
))
1370 /* Create any extra PLT sections in case check_relocs has already
1371 been called on all the non-dynamic input files. */
1372 if (! add_extra_plt_sections (info
, htab
->plt_reloc_count
))
1375 noalloc_flags
= (SEC_HAS_CONTENTS
| SEC_IN_MEMORY
1376 | SEC_LINKER_CREATED
| SEC_READONLY
);
1377 flags
= noalloc_flags
| SEC_ALLOC
| SEC_LOAD
;
1379 /* Mark the ".got.plt" section READONLY. */
1380 if (htab
->elf
.sgotplt
== NULL
1381 || !bfd_set_section_flags (htab
->elf
.sgotplt
, flags
))
1384 /* Create ".got.loc" (literal tables for use by dynamic linker). */
1385 htab
->sgotloc
= bfd_make_section_anyway_with_flags (dynobj
, ".got.loc",
1387 if (htab
->sgotloc
== NULL
1388 || !bfd_set_section_alignment (htab
->sgotloc
, 2))
1391 /* Create ".xt.lit.plt" (literal table for ".got.plt*"). */
1392 htab
->spltlittbl
= bfd_make_section_anyway_with_flags (dynobj
, ".xt.lit.plt",
1394 if (htab
->spltlittbl
== NULL
1395 || !bfd_set_section_alignment (htab
->spltlittbl
, 2))
1403 add_extra_plt_sections (struct bfd_link_info
*info
, int count
)
1405 bfd
*dynobj
= elf_hash_table (info
)->dynobj
;
1408 /* Iterate over all chunks except 0 which uses the standard ".plt" and
1409 ".got.plt" sections. */
1410 for (chunk
= count
/ PLT_ENTRIES_PER_CHUNK
; chunk
> 0; chunk
--)
1416 /* Stop when we find a section has already been created. */
1417 if (elf_xtensa_get_plt_section (info
, chunk
))
1420 flags
= (SEC_ALLOC
| SEC_LOAD
| SEC_HAS_CONTENTS
| SEC_IN_MEMORY
1421 | SEC_LINKER_CREATED
| SEC_READONLY
);
1423 sname
= (char *) bfd_malloc (10);
1424 sprintf (sname
, ".plt.%u", chunk
);
1425 s
= bfd_make_section_anyway_with_flags (dynobj
, sname
, flags
| SEC_CODE
);
1427 || !bfd_set_section_alignment (s
, 2))
1430 sname
= (char *) bfd_malloc (14);
1431 sprintf (sname
, ".got.plt.%u", chunk
);
1432 s
= bfd_make_section_anyway_with_flags (dynobj
, sname
, flags
);
1434 || !bfd_set_section_alignment (s
, 2))
1442 /* Adjust a symbol defined by a dynamic object and referenced by a
1443 regular object. The current definition is in some section of the
1444 dynamic object, but we're not including those sections. We have to
1445 change the definition to something the rest of the link can
1449 elf_xtensa_adjust_dynamic_symbol (struct bfd_link_info
*info ATTRIBUTE_UNUSED
,
1450 struct elf_link_hash_entry
*h
)
1452 /* If this is a weak symbol, and there is a real definition, the
1453 processor independent code will have arranged for us to see the
1454 real definition first, and we can just use the same value. */
1455 if (h
->is_weakalias
)
1457 struct elf_link_hash_entry
*def
= weakdef (h
);
1458 BFD_ASSERT (def
->root
.type
== bfd_link_hash_defined
);
1459 h
->root
.u
.def
.section
= def
->root
.u
.def
.section
;
1460 h
->root
.u
.def
.value
= def
->root
.u
.def
.value
;
1464 /* This is a reference to a symbol defined by a dynamic object. The
1465 reference must go through the GOT, so there's no need for COPY relocs,
1473 elf_xtensa_allocate_dynrelocs (struct elf_link_hash_entry
*h
, void *arg
)
1475 struct bfd_link_info
*info
;
1476 struct elf_xtensa_link_hash_table
*htab
;
1477 struct elf_xtensa_link_hash_entry
*eh
= elf_xtensa_hash_entry (h
);
1479 if (h
->root
.type
== bfd_link_hash_indirect
)
1482 info
= (struct bfd_link_info
*) arg
;
1483 htab
= elf_xtensa_hash_table (info
);
1487 /* If we saw any use of an IE model for this symbol, we can then optimize
1488 away GOT entries for any TLSDESC_FN relocs. */
1489 if ((eh
->tls_type
& GOT_TLS_IE
) != 0)
1491 BFD_ASSERT (h
->got
.refcount
>= eh
->tlsfunc_refcount
);
1492 h
->got
.refcount
-= eh
->tlsfunc_refcount
;
1495 if (! elf_xtensa_dynamic_symbol_p (h
, info
))
1496 elf_xtensa_make_sym_local (info
, h
);
1498 if (! elf_xtensa_dynamic_symbol_p (h
, info
)
1499 && h
->root
.type
== bfd_link_hash_undefweak
)
1502 if (h
->plt
.refcount
> 0)
1503 htab
->elf
.srelplt
->size
+= (h
->plt
.refcount
* sizeof (Elf32_External_Rela
));
1505 if (h
->got
.refcount
> 0)
1506 htab
->elf
.srelgot
->size
+= (h
->got
.refcount
* sizeof (Elf32_External_Rela
));
1513 elf_xtensa_allocate_local_got_size (struct bfd_link_info
*info
)
1515 struct elf_xtensa_link_hash_table
*htab
;
1518 htab
= elf_xtensa_hash_table (info
);
1522 for (i
= info
->input_bfds
; i
; i
= i
->link
.next
)
1524 bfd_signed_vma
*local_got_refcounts
;
1525 bfd_size_type j
, cnt
;
1526 Elf_Internal_Shdr
*symtab_hdr
;
1528 local_got_refcounts
= elf_local_got_refcounts (i
);
1529 if (!local_got_refcounts
)
1532 symtab_hdr
= &elf_tdata (i
)->symtab_hdr
;
1533 cnt
= symtab_hdr
->sh_info
;
1535 for (j
= 0; j
< cnt
; ++j
)
1537 /* If we saw any use of an IE model for this symbol, we can
1538 then optimize away GOT entries for any TLSDESC_FN relocs. */
1539 if ((elf_xtensa_local_got_tls_type (i
) [j
] & GOT_TLS_IE
) != 0)
1541 bfd_signed_vma
*tlsfunc_refcount
1542 = &elf_xtensa_local_tlsfunc_refcounts (i
) [j
];
1543 BFD_ASSERT (local_got_refcounts
[j
] >= *tlsfunc_refcount
);
1544 local_got_refcounts
[j
] -= *tlsfunc_refcount
;
1547 if (local_got_refcounts
[j
] > 0)
1548 htab
->elf
.srelgot
->size
+= (local_got_refcounts
[j
]
1549 * sizeof (Elf32_External_Rela
));
1555 /* Set the sizes of the dynamic sections. */
1558 elf_xtensa_late_size_sections (bfd
*output_bfd ATTRIBUTE_UNUSED
,
1559 struct bfd_link_info
*info
)
1561 struct elf_xtensa_link_hash_table
*htab
;
1563 asection
*s
, *srelplt
, *splt
, *sgotplt
, *srelgot
, *spltlittbl
, *sgotloc
;
1564 bool relplt
, relgot
;
1565 int plt_entries
, plt_chunks
, chunk
;
1570 htab
= elf_xtensa_hash_table (info
);
1574 dynobj
= elf_hash_table (info
)->dynobj
;
1577 srelgot
= htab
->elf
.srelgot
;
1578 srelplt
= htab
->elf
.srelplt
;
1580 if (elf_hash_table (info
)->dynamic_sections_created
)
1582 BFD_ASSERT (htab
->elf
.srelgot
!= NULL
1583 && htab
->elf
.srelplt
!= NULL
1584 && htab
->elf
.sgot
!= NULL
1585 && htab
->spltlittbl
!= NULL
1586 && htab
->sgotloc
!= NULL
);
1588 /* Set the contents of the .interp section to the interpreter. */
1589 if (bfd_link_executable (info
) && !info
->nointerp
)
1591 s
= bfd_get_linker_section (dynobj
, ".interp");
1594 s
->size
= sizeof ELF_DYNAMIC_INTERPRETER
;
1595 s
->contents
= (unsigned char *) ELF_DYNAMIC_INTERPRETER
;
1599 /* Allocate room for one word in ".got". */
1600 htab
->elf
.sgot
->size
= 4;
1602 /* Allocate space in ".rela.got" for literals that reference global
1603 symbols and space in ".rela.plt" for literals that have PLT
1605 elf_link_hash_traverse (elf_hash_table (info
),
1606 elf_xtensa_allocate_dynrelocs
,
1609 /* If we are generating a shared object, we also need space in
1610 ".rela.got" for R_XTENSA_RELATIVE relocs for literals that
1611 reference local symbols. */
1612 if (bfd_link_pic (info
))
1613 elf_xtensa_allocate_local_got_size (info
);
1615 /* Allocate space in ".plt" to match the size of ".rela.plt". For
1616 each PLT entry, we need the PLT code plus a 4-byte literal.
1617 For each chunk of ".plt", we also need two more 4-byte
1618 literals, two corresponding entries in ".rela.got", and an
1619 8-byte entry in ".xt.lit.plt". */
1620 spltlittbl
= htab
->spltlittbl
;
1621 plt_entries
= srelplt
->size
/ sizeof (Elf32_External_Rela
);
1623 (plt_entries
+ PLT_ENTRIES_PER_CHUNK
- 1) / PLT_ENTRIES_PER_CHUNK
;
1625 /* Iterate over all the PLT chunks, including any extra sections
1626 created earlier because the initial count of PLT relocations
1627 was an overestimate. */
1629 (splt
= elf_xtensa_get_plt_section (info
, chunk
)) != NULL
;
1634 sgotplt
= elf_xtensa_get_gotplt_section (info
, chunk
);
1635 BFD_ASSERT (sgotplt
!= NULL
);
1637 if (chunk
< plt_chunks
- 1)
1638 chunk_entries
= PLT_ENTRIES_PER_CHUNK
;
1639 else if (chunk
== plt_chunks
- 1)
1640 chunk_entries
= plt_entries
- (chunk
* PLT_ENTRIES_PER_CHUNK
);
1644 if (chunk_entries
!= 0)
1646 sgotplt
->size
= 4 * (chunk_entries
+ 2);
1647 splt
->size
= PLT_ENTRY_SIZE
* chunk_entries
;
1648 srelgot
->size
+= 2 * sizeof (Elf32_External_Rela
);
1649 spltlittbl
->size
+= 8;
1658 /* Allocate space in ".got.loc" to match the total size of all the
1660 sgotloc
= htab
->sgotloc
;
1661 sgotloc
->size
= spltlittbl
->size
;
1662 for (abfd
= info
->input_bfds
; abfd
!= NULL
; abfd
= abfd
->link
.next
)
1664 if (abfd
->flags
& DYNAMIC
)
1666 for (s
= abfd
->sections
; s
!= NULL
; s
= s
->next
)
1668 if (! discarded_section (s
)
1669 && xtensa_is_littable_section (s
)
1671 sgotloc
->size
+= s
->size
;
1676 /* Allocate memory for dynamic sections. */
1679 for (s
= dynobj
->sections
; s
!= NULL
; s
= s
->next
)
1683 if ((s
->flags
& SEC_LINKER_CREATED
) == 0)
1686 /* It's OK to base decisions on the section name, because none
1687 of the dynobj section names depend upon the input files. */
1688 name
= bfd_section_name (s
);
1690 if (startswith (name
, ".rela"))
1694 if (strcmp (name
, ".rela.plt") == 0)
1696 else if (strcmp (name
, ".rela.got") == 0)
1699 /* We use the reloc_count field as a counter if we need
1700 to copy relocs into the output file. */
1704 else if (! startswith (name
, ".plt.")
1705 && ! startswith (name
, ".got.plt.")
1706 && strcmp (name
, ".got") != 0
1707 && strcmp (name
, ".plt") != 0
1708 && strcmp (name
, ".got.plt") != 0
1709 && strcmp (name
, ".xt.lit.plt") != 0
1710 && strcmp (name
, ".got.loc") != 0)
1712 /* It's not one of our sections, so don't allocate space. */
1718 /* If we don't need this section, strip it from the output
1719 file. We must create the ".plt*" and ".got.plt*"
1720 sections in create_dynamic_sections and/or check_relocs
1721 based on a conservative estimate of the PLT relocation
1722 count, because the sections must be created before the
1723 linker maps input sections to output sections. The
1724 linker does that before size_dynamic_sections, where we
1725 compute the exact size of the PLT, so there may be more
1726 of these sections than are actually needed. */
1727 s
->flags
|= SEC_EXCLUDE
;
1729 else if ((s
->flags
& SEC_HAS_CONTENTS
) != 0)
1731 /* Allocate memory for the section contents. */
1732 s
->contents
= (bfd_byte
*) bfd_zalloc (dynobj
, s
->size
);
1733 if (s
->contents
== NULL
)
1739 if (elf_hash_table (info
)->dynamic_sections_created
)
1741 /* Add the special XTENSA_RTLD relocations now. The offsets won't be
1742 known until finish_dynamic_sections, but we need to get the relocs
1743 in place before they are sorted. */
1744 for (chunk
= 0; chunk
< plt_chunks
; chunk
++)
1746 Elf_Internal_Rela irela
;
1750 irela
.r_info
= ELF32_R_INFO (0, R_XTENSA_RTLD
);
1753 loc
= (srelgot
->contents
1754 + srelgot
->reloc_count
* sizeof (Elf32_External_Rela
));
1755 bfd_elf32_swap_reloca_out (output_bfd
, &irela
, loc
);
1756 bfd_elf32_swap_reloca_out (output_bfd
, &irela
,
1757 loc
+ sizeof (Elf32_External_Rela
));
1758 srelgot
->reloc_count
+= 2;
1761 /* Add some entries to the .dynamic section. We fill in the
1762 values later, in elf_xtensa_finish_dynamic_sections, but we
1763 must add the entries now so that we get the correct size for
1764 the .dynamic section. The DT_DEBUG entry is filled in by the
1765 dynamic linker and used by the debugger. */
1766 #define add_dynamic_entry(TAG, VAL) \
1767 _bfd_elf_add_dynamic_entry (info, TAG, VAL)
1769 if (!_bfd_elf_add_dynamic_tags (output_bfd
, info
,
1773 if (!add_dynamic_entry (DT_XTENSA_GOT_LOC_OFF
, 0)
1774 || !add_dynamic_entry (DT_XTENSA_GOT_LOC_SZ
, 0))
1777 #undef add_dynamic_entry
1783 elf_xtensa_early_size_sections (bfd
*output_bfd
, struct bfd_link_info
*info
)
1785 struct elf_xtensa_link_hash_table
*htab
;
1788 htab
= elf_xtensa_hash_table (info
);
1792 tls_sec
= htab
->elf
.tls_sec
;
1794 if (tls_sec
&& (htab
->tlsbase
->tls_type
& GOT_TLS_ANY
) != 0)
1796 struct elf_link_hash_entry
*tlsbase
= &htab
->tlsbase
->elf
;
1797 struct bfd_link_hash_entry
*bh
= &tlsbase
->root
;
1798 const struct elf_backend_data
*bed
= get_elf_backend_data (output_bfd
);
1800 tlsbase
->type
= STT_TLS
;
1801 if (!(_bfd_generic_link_add_one_symbol
1802 (info
, output_bfd
, "_TLS_MODULE_BASE_", BSF_LOCAL
,
1803 tls_sec
, 0, NULL
, false,
1804 bed
->collect
, &bh
)))
1806 tlsbase
->def_regular
= 1;
1807 tlsbase
->other
= STV_HIDDEN
;
1808 (*bed
->elf_backend_hide_symbol
) (info
, tlsbase
, true);
1815 /* Return the base VMA address which should be subtracted from real addresses
1816 when resolving @dtpoff relocation.
1817 This is PT_TLS segment p_vaddr. */
1820 dtpoff_base (struct bfd_link_info
*info
)
1822 /* If tls_sec is NULL, we should have signalled an error already. */
1823 if (elf_hash_table (info
)->tls_sec
== NULL
)
1825 return elf_hash_table (info
)->tls_sec
->vma
;
1828 /* Return the relocation value for @tpoff relocation
1829 if STT_TLS virtual address is ADDRESS. */
1832 tpoff (struct bfd_link_info
*info
, bfd_vma address
)
1834 struct elf_link_hash_table
*htab
= elf_hash_table (info
);
1837 /* If tls_sec is NULL, we should have signalled an error already. */
1838 if (htab
->tls_sec
== NULL
)
1840 base
= align_power ((bfd_vma
) TCB_SIZE
, htab
->tls_sec
->alignment_power
);
1841 return address
- htab
->tls_sec
->vma
+ base
;
1844 /* Perform the specified relocation. The instruction at (contents + address)
1845 is modified to set one operand to represent the value in "relocation". The
1846 operand position is determined by the relocation type recorded in the
1849 #define CALL_SEGMENT_BITS (30)
1850 #define CALL_SEGMENT_SIZE (1 << CALL_SEGMENT_BITS)
1852 static bfd_reloc_status_type
1853 elf_xtensa_do_reloc (reloc_howto_type
*howto
,
1855 asection
*input_section
,
1860 char **error_message
)
1863 xtensa_opcode opcode
;
1864 xtensa_isa isa
= xtensa_default_isa
;
1865 static xtensa_insnbuf ibuff
= NULL
;
1866 static xtensa_insnbuf sbuff
= NULL
;
1867 bfd_vma self_address
;
1868 bfd_size_type input_size
;
1874 ibuff
= xtensa_insnbuf_alloc (isa
);
1875 sbuff
= xtensa_insnbuf_alloc (isa
);
1878 input_size
= bfd_get_section_limit (abfd
, input_section
);
1880 /* Calculate the PC address for this instruction. */
1881 self_address
= (input_section
->output_section
->vma
1882 + input_section
->output_offset
1885 switch (howto
->type
)
1888 case R_XTENSA_DIFF8
:
1889 case R_XTENSA_DIFF16
:
1890 case R_XTENSA_DIFF32
:
1891 case R_XTENSA_PDIFF8
:
1892 case R_XTENSA_PDIFF16
:
1893 case R_XTENSA_PDIFF32
:
1894 case R_XTENSA_NDIFF8
:
1895 case R_XTENSA_NDIFF16
:
1896 case R_XTENSA_NDIFF32
:
1897 case R_XTENSA_TLS_FUNC
:
1898 case R_XTENSA_TLS_ARG
:
1899 case R_XTENSA_TLS_CALL
:
1900 return bfd_reloc_ok
;
1902 case R_XTENSA_ASM_EXPAND
:
1905 /* Check for windowed CALL across a 1GB boundary. */
1906 opcode
= get_expanded_call_opcode (contents
+ address
,
1907 input_size
- address
, 0);
1908 if (is_windowed_call_opcode (opcode
))
1910 if ((self_address
>> CALL_SEGMENT_BITS
)
1911 != (relocation
>> CALL_SEGMENT_BITS
))
1913 *error_message
= "windowed longcall crosses 1GB boundary; "
1915 return bfd_reloc_dangerous
;
1919 return bfd_reloc_ok
;
1921 case R_XTENSA_ASM_SIMPLIFY
:
1923 /* Convert the L32R/CALLX to CALL. */
1924 bfd_reloc_status_type retval
=
1925 elf_xtensa_do_asm_simplify (contents
, address
, input_size
,
1927 if (retval
!= bfd_reloc_ok
)
1928 return bfd_reloc_dangerous
;
1930 /* The CALL needs to be relocated. Continue below for that part. */
1933 howto
= &elf_howto_table
[(unsigned) R_XTENSA_SLOT0_OP
];
1940 x
= bfd_get_32 (abfd
, contents
+ address
);
1942 bfd_put_32 (abfd
, x
, contents
+ address
);
1944 return bfd_reloc_ok
;
1946 case R_XTENSA_32_PCREL
:
1947 bfd_put_32 (abfd
, relocation
- self_address
, contents
+ address
);
1948 return bfd_reloc_ok
;
1951 case R_XTENSA_TLSDESC_FN
:
1952 case R_XTENSA_TLSDESC_ARG
:
1953 case R_XTENSA_TLS_DTPOFF
:
1954 case R_XTENSA_TLS_TPOFF
:
1955 bfd_put_32 (abfd
, relocation
, contents
+ address
);
1956 return bfd_reloc_ok
;
1959 /* Only instruction slot-specific relocations handled below.... */
1960 slot
= get_relocation_slot (howto
->type
);
1961 if (slot
== XTENSA_UNDEFINED
)
1963 *error_message
= "unexpected relocation";
1964 return bfd_reloc_dangerous
;
1967 if (input_size
<= address
)
1968 return bfd_reloc_outofrange
;
1969 /* Read the instruction into a buffer and decode the opcode. */
1970 xtensa_insnbuf_from_chars (isa
, ibuff
, contents
+ address
,
1971 input_size
- address
);
1972 fmt
= xtensa_format_decode (isa
, ibuff
);
1973 if (fmt
== XTENSA_UNDEFINED
)
1975 *error_message
= "cannot decode instruction format";
1976 return bfd_reloc_dangerous
;
1979 xtensa_format_get_slot (isa
, fmt
, slot
, ibuff
, sbuff
);
1981 opcode
= xtensa_opcode_decode (isa
, fmt
, slot
, sbuff
);
1982 if (opcode
== XTENSA_UNDEFINED
)
1984 *error_message
= "cannot decode instruction opcode";
1985 return bfd_reloc_dangerous
;
1988 /* Check for opcode-specific "alternate" relocations. */
1989 if (is_alt_relocation (howto
->type
))
1991 if (opcode
== get_l32r_opcode ())
1993 /* Handle the special-case of non-PC-relative L32R instructions. */
1994 bfd
*output_bfd
= input_section
->output_section
->owner
;
1995 asection
*lit4_sec
= bfd_get_section_by_name (output_bfd
, ".lit4");
1998 *error_message
= "relocation references missing .lit4 section";
1999 return bfd_reloc_dangerous
;
2001 self_address
= ((lit4_sec
->vma
& ~0xfff)
2002 + 0x40000 - 3); /* -3 to compensate for do_reloc */
2003 newval
= relocation
;
2006 else if (opcode
== get_const16_opcode ())
2008 /* ALT used for high 16 bits.
2009 Ignore 32-bit overflow. */
2010 newval
= (relocation
>> 16) & 0xffff;
2015 /* No other "alternate" relocations currently defined. */
2016 *error_message
= "unexpected relocation";
2017 return bfd_reloc_dangerous
;
2020 else /* Not an "alternate" relocation.... */
2022 if (opcode
== get_const16_opcode ())
2024 newval
= relocation
& 0xffff;
2029 /* ...normal PC-relative relocation.... */
2031 /* Determine which operand is being relocated. */
2032 opnd
= get_relocation_opnd (opcode
, howto
->type
);
2033 if (opnd
== XTENSA_UNDEFINED
)
2035 *error_message
= "unexpected relocation";
2036 return bfd_reloc_dangerous
;
2039 if (!howto
->pc_relative
)
2041 *error_message
= "expected PC-relative relocation";
2042 return bfd_reloc_dangerous
;
2045 newval
= relocation
;
2049 /* Apply the relocation. */
2050 if (xtensa_operand_do_reloc (isa
, opcode
, opnd
, &newval
, self_address
)
2051 || xtensa_operand_encode (isa
, opcode
, opnd
, &newval
)
2052 || xtensa_operand_set_field (isa
, opcode
, opnd
, fmt
, slot
,
2055 const char *opname
= xtensa_opcode_name (isa
, opcode
);
2058 msg
= "cannot encode";
2059 if (is_direct_call_opcode (opcode
))
2061 if ((relocation
& 0x3) != 0)
2062 msg
= "misaligned call target";
2064 msg
= "call target out of range";
2066 else if (opcode
== get_l32r_opcode ())
2068 if ((relocation
& 0x3) != 0)
2069 msg
= "misaligned literal target";
2070 else if (is_alt_relocation (howto
->type
))
2071 msg
= "literal target out of range (too many literals)";
2072 else if (self_address
> relocation
)
2073 msg
= "literal target out of range (try using text-section-literals)";
2075 msg
= "literal placed after use";
2078 *error_message
= vsprint_msg (opname
, ": %s", strlen (msg
) + 2, msg
);
2079 return bfd_reloc_dangerous
;
2082 /* Check for calls across 1GB boundaries. */
2083 if (is_direct_call_opcode (opcode
)
2084 && is_windowed_call_opcode (opcode
))
2086 if ((self_address
>> CALL_SEGMENT_BITS
)
2087 != (relocation
>> CALL_SEGMENT_BITS
))
2090 "windowed call crosses 1GB boundary; return may fail";
2091 return bfd_reloc_dangerous
;
2095 /* Write the modified instruction back out of the buffer. */
2096 xtensa_format_set_slot (isa
, fmt
, slot
, ibuff
, sbuff
);
2097 xtensa_insnbuf_to_chars (isa
, ibuff
, contents
+ address
,
2098 input_size
- address
);
2099 return bfd_reloc_ok
;
2104 vsprint_msg (const char *origmsg
, const char *fmt
, int arglen
, ...)
2106 /* To reduce the size of the memory leak,
2107 we only use a single message buffer. */
2108 static bfd_size_type alloc_size
= 0;
2109 static char *message
= NULL
;
2110 bfd_size_type orig_len
, len
= 0;
2114 va_start (ap
, arglen
);
2116 is_append
= (origmsg
== message
);
2118 orig_len
= strlen (origmsg
);
2119 len
= orig_len
+ strlen (fmt
) + arglen
+ 20;
2120 if (len
> alloc_size
)
2122 message
= (char *) bfd_realloc_or_free (message
, len
);
2125 if (message
!= NULL
)
2128 memcpy (message
, origmsg
, orig_len
);
2129 vsprintf (message
+ orig_len
, fmt
, ap
);
2136 /* This function is registered as the "special_function" in the
2137 Xtensa howto for handling simplify operations.
2138 bfd_perform_relocation / bfd_install_relocation use it to
2139 perform (install) the specified relocation. Since this replaces the code
2140 in bfd_perform_relocation, it is basically an Xtensa-specific,
2141 stripped-down version of bfd_perform_relocation. */
2143 static bfd_reloc_status_type
2144 bfd_elf_xtensa_reloc (bfd
*abfd
,
2145 arelent
*reloc_entry
,
2148 asection
*input_section
,
2150 char **error_message
)
2153 bfd_reloc_status_type flag
;
2154 bfd_size_type octets
= (reloc_entry
->address
2155 * OCTETS_PER_BYTE (abfd
, input_section
));
2156 bfd_vma output_base
= 0;
2157 reloc_howto_type
*howto
= reloc_entry
->howto
;
2158 asection
*reloc_target_output_section
;
2161 if (!xtensa_default_isa
)
2162 xtensa_default_isa
= xtensa_isa_init (0, 0);
2164 /* ELF relocs are against symbols. If we are producing relocatable
2165 output, and the reloc is against an external symbol, the resulting
2166 reloc will also be against the same symbol. In such a case, we
2167 don't want to change anything about the way the reloc is handled,
2168 since it will all be done at final link time. This test is similar
2169 to what bfd_elf_generic_reloc does except that it lets relocs with
2170 howto->partial_inplace go through even if the addend is non-zero.
2171 (The real problem is that partial_inplace is set for XTENSA_32
2172 relocs to begin with, but that's a long story and there's little we
2173 can do about it now....) */
2175 if (output_bfd
&& (symbol
->flags
& BSF_SECTION_SYM
) == 0)
2177 reloc_entry
->address
+= input_section
->output_offset
;
2178 return bfd_reloc_ok
;
2181 /* Is the address of the relocation really within the section? */
2182 if (reloc_entry
->address
> bfd_get_section_limit (abfd
, input_section
))
2183 return bfd_reloc_outofrange
;
2185 /* Work out which section the relocation is targeted at and the
2186 initial relocation command value. */
2188 /* Get symbol value. (Common symbols are special.) */
2189 if (bfd_is_com_section (symbol
->section
))
2192 relocation
= symbol
->value
;
2194 reloc_target_output_section
= symbol
->section
->output_section
;
2196 /* Convert input-section-relative symbol value to absolute. */
2197 if ((output_bfd
&& !howto
->partial_inplace
)
2198 || reloc_target_output_section
== NULL
)
2201 output_base
= reloc_target_output_section
->vma
;
2203 relocation
+= output_base
+ symbol
->section
->output_offset
;
2205 /* Add in supplied addend. */
2206 relocation
+= reloc_entry
->addend
;
2208 /* Here the variable relocation holds the final address of the
2209 symbol we are relocating against, plus any addend. */
2212 if (!howto
->partial_inplace
)
2214 /* This is a partial relocation, and we want to apply the relocation
2215 to the reloc entry rather than the raw data. Everything except
2216 relocations against section symbols has already been handled
2219 BFD_ASSERT (symbol
->flags
& BSF_SECTION_SYM
);
2220 reloc_entry
->addend
= relocation
;
2221 reloc_entry
->address
+= input_section
->output_offset
;
2222 return bfd_reloc_ok
;
2226 reloc_entry
->address
+= input_section
->output_offset
;
2227 reloc_entry
->addend
= 0;
2231 is_weak_undef
= (bfd_is_und_section (symbol
->section
)
2232 && (symbol
->flags
& BSF_WEAK
) != 0);
2233 flag
= elf_xtensa_do_reloc (howto
, abfd
, input_section
, relocation
,
2234 (bfd_byte
*) data
, (bfd_vma
) octets
,
2235 is_weak_undef
, error_message
);
2237 if (flag
== bfd_reloc_dangerous
)
2239 /* Add the symbol name to the error message. */
2240 if (! *error_message
)
2241 *error_message
= "";
2242 *error_message
= vsprint_msg (*error_message
, ": (%s + 0x%lx)",
2243 strlen (symbol
->name
) + 17,
2245 (unsigned long) reloc_entry
->addend
);
2251 int xtensa_abi_choice (void)
2253 if (elf32xtensa_abi
== XTHAL_ABI_UNDEFINED
)
2256 return elf32xtensa_abi
;
2259 /* Set up an entry in the procedure linkage table. */
2262 elf_xtensa_create_plt_entry (struct bfd_link_info
*info
,
2264 unsigned reloc_index
)
2266 asection
*splt
, *sgotplt
;
2267 bfd_vma plt_base
, got_base
;
2268 bfd_vma code_offset
, lit_offset
, abi_offset
;
2270 int abi
= xtensa_abi_choice ();
2272 chunk
= reloc_index
/ PLT_ENTRIES_PER_CHUNK
;
2273 splt
= elf_xtensa_get_plt_section (info
, chunk
);
2274 sgotplt
= elf_xtensa_get_gotplt_section (info
, chunk
);
2275 BFD_ASSERT (splt
!= NULL
&& sgotplt
!= NULL
);
2277 plt_base
= splt
->output_section
->vma
+ splt
->output_offset
;
2278 got_base
= sgotplt
->output_section
->vma
+ sgotplt
->output_offset
;
2280 lit_offset
= 8 + (reloc_index
% PLT_ENTRIES_PER_CHUNK
) * 4;
2281 code_offset
= (reloc_index
% PLT_ENTRIES_PER_CHUNK
) * PLT_ENTRY_SIZE
;
2283 /* Fill in the literal entry. This is the offset of the dynamic
2284 relocation entry. */
2285 bfd_put_32 (output_bfd
, reloc_index
* sizeof (Elf32_External_Rela
),
2286 sgotplt
->contents
+ lit_offset
);
2288 /* Fill in the entry in the procedure linkage table. */
2289 memcpy (splt
->contents
+ code_offset
,
2290 (bfd_big_endian (output_bfd
)
2291 ? elf_xtensa_be_plt_entry
[abi
!= XTHAL_ABI_WINDOWED
]
2292 : elf_xtensa_le_plt_entry
[abi
!= XTHAL_ABI_WINDOWED
]),
2294 abi_offset
= abi
== XTHAL_ABI_WINDOWED
? 3 : 0;
2295 bfd_put_16 (output_bfd
, l32r_offset (got_base
+ 0,
2296 plt_base
+ code_offset
+ abi_offset
),
2297 splt
->contents
+ code_offset
+ abi_offset
+ 1);
2298 bfd_put_16 (output_bfd
, l32r_offset (got_base
+ 4,
2299 plt_base
+ code_offset
+ abi_offset
+ 3),
2300 splt
->contents
+ code_offset
+ abi_offset
+ 4);
2301 bfd_put_16 (output_bfd
, l32r_offset (got_base
+ lit_offset
,
2302 plt_base
+ code_offset
+ abi_offset
+ 6),
2303 splt
->contents
+ code_offset
+ abi_offset
+ 7);
2305 return plt_base
+ code_offset
;
2309 static bool get_indirect_call_dest_reg (xtensa_opcode
, unsigned *);
2312 replace_tls_insn (Elf_Internal_Rela
*rel
,
2314 asection
*input_section
,
2317 char **error_message
)
2319 static xtensa_insnbuf ibuff
= NULL
;
2320 static xtensa_insnbuf sbuff
= NULL
;
2321 xtensa_isa isa
= xtensa_default_isa
;
2323 xtensa_opcode old_op
, new_op
;
2324 bfd_size_type input_size
;
2326 unsigned dest_reg
, src_reg
;
2330 ibuff
= xtensa_insnbuf_alloc (isa
);
2331 sbuff
= xtensa_insnbuf_alloc (isa
);
2334 input_size
= bfd_get_section_limit (abfd
, input_section
);
2336 /* Read the instruction into a buffer and decode the opcode. */
2337 xtensa_insnbuf_from_chars (isa
, ibuff
, contents
+ rel
->r_offset
,
2338 input_size
- rel
->r_offset
);
2339 fmt
= xtensa_format_decode (isa
, ibuff
);
2340 if (fmt
== XTENSA_UNDEFINED
)
2342 *error_message
= "cannot decode instruction format";
2346 BFD_ASSERT (xtensa_format_num_slots (isa
, fmt
) == 1);
2347 xtensa_format_get_slot (isa
, fmt
, 0, ibuff
, sbuff
);
2349 old_op
= xtensa_opcode_decode (isa
, fmt
, 0, sbuff
);
2350 if (old_op
== XTENSA_UNDEFINED
)
2352 *error_message
= "cannot decode instruction opcode";
2356 r_type
= ELF32_R_TYPE (rel
->r_info
);
2359 case R_XTENSA_TLS_FUNC
:
2360 case R_XTENSA_TLS_ARG
:
2361 if (old_op
!= get_l32r_opcode ()
2362 || xtensa_operand_get_field (isa
, old_op
, 0, fmt
, 0,
2363 sbuff
, &dest_reg
) != 0)
2365 *error_message
= "cannot extract L32R destination for TLS access";
2370 case R_XTENSA_TLS_CALL
:
2371 if (! get_indirect_call_dest_reg (old_op
, &dest_reg
)
2372 || xtensa_operand_get_field (isa
, old_op
, 0, fmt
, 0,
2373 sbuff
, &src_reg
) != 0)
2375 *error_message
= "cannot extract CALLXn operands for TLS access";
2388 case R_XTENSA_TLS_FUNC
:
2389 case R_XTENSA_TLS_ARG
:
2390 /* Change the instruction to a NOP (or "OR a1, a1, a1" for older
2391 versions of Xtensa). */
2392 new_op
= xtensa_opcode_lookup (isa
, "nop");
2393 if (new_op
== XTENSA_UNDEFINED
)
2395 new_op
= xtensa_opcode_lookup (isa
, "or");
2396 if (new_op
== XTENSA_UNDEFINED
2397 || xtensa_opcode_encode (isa
, fmt
, 0, sbuff
, new_op
) != 0
2398 || xtensa_operand_set_field (isa
, new_op
, 0, fmt
, 0,
2400 || xtensa_operand_set_field (isa
, new_op
, 1, fmt
, 0,
2402 || xtensa_operand_set_field (isa
, new_op
, 2, fmt
, 0,
2405 *error_message
= "cannot encode OR for TLS access";
2411 if (xtensa_opcode_encode (isa
, fmt
, 0, sbuff
, new_op
) != 0)
2413 *error_message
= "cannot encode NOP for TLS access";
2419 case R_XTENSA_TLS_CALL
:
2420 /* Read THREADPTR into the CALLX's return value register. */
2421 new_op
= xtensa_opcode_lookup (isa
, "rur.threadptr");
2422 if (new_op
== XTENSA_UNDEFINED
2423 || xtensa_opcode_encode (isa
, fmt
, 0, sbuff
, new_op
) != 0
2424 || xtensa_operand_set_field (isa
, new_op
, 0, fmt
, 0,
2425 sbuff
, dest_reg
+ 2) != 0)
2427 *error_message
= "cannot encode RUR.THREADPTR for TLS access";
2437 case R_XTENSA_TLS_FUNC
:
2438 new_op
= xtensa_opcode_lookup (isa
, "rur.threadptr");
2439 if (new_op
== XTENSA_UNDEFINED
2440 || xtensa_opcode_encode (isa
, fmt
, 0, sbuff
, new_op
) != 0
2441 || xtensa_operand_set_field (isa
, new_op
, 0, fmt
, 0,
2442 sbuff
, dest_reg
) != 0)
2444 *error_message
= "cannot encode RUR.THREADPTR for TLS access";
2449 case R_XTENSA_TLS_ARG
:
2450 /* Nothing to do. Keep the original L32R instruction. */
2453 case R_XTENSA_TLS_CALL
:
2454 /* Add the CALLX's src register (holding the THREADPTR value)
2455 to the first argument register (holding the offset) and put
2456 the result in the CALLX's return value register. */
2457 new_op
= xtensa_opcode_lookup (isa
, "add");
2458 if (new_op
== XTENSA_UNDEFINED
2459 || xtensa_opcode_encode (isa
, fmt
, 0, sbuff
, new_op
) != 0
2460 || xtensa_operand_set_field (isa
, new_op
, 0, fmt
, 0,
2461 sbuff
, dest_reg
+ 2) != 0
2462 || xtensa_operand_set_field (isa
, new_op
, 1, fmt
, 0,
2463 sbuff
, dest_reg
+ 2) != 0
2464 || xtensa_operand_set_field (isa
, new_op
, 2, fmt
, 0,
2465 sbuff
, src_reg
) != 0)
2467 *error_message
= "cannot encode ADD for TLS access";
2474 xtensa_format_set_slot (isa
, fmt
, 0, ibuff
, sbuff
);
2475 xtensa_insnbuf_to_chars (isa
, ibuff
, contents
+ rel
->r_offset
,
2476 input_size
- rel
->r_offset
);
2482 #define IS_XTENSA_TLS_RELOC(R_TYPE) \
2483 ((R_TYPE) == R_XTENSA_TLSDESC_FN \
2484 || (R_TYPE) == R_XTENSA_TLSDESC_ARG \
2485 || (R_TYPE) == R_XTENSA_TLS_DTPOFF \
2486 || (R_TYPE) == R_XTENSA_TLS_TPOFF \
2487 || (R_TYPE) == R_XTENSA_TLS_FUNC \
2488 || (R_TYPE) == R_XTENSA_TLS_ARG \
2489 || (R_TYPE) == R_XTENSA_TLS_CALL)
2491 /* Relocate an Xtensa ELF section. This is invoked by the linker for
2492 both relocatable and final links. */
2495 elf_xtensa_relocate_section (bfd
*output_bfd
,
2496 struct bfd_link_info
*info
,
2498 asection
*input_section
,
2500 Elf_Internal_Rela
*relocs
,
2501 Elf_Internal_Sym
*local_syms
,
2502 asection
**local_sections
)
2504 struct elf_xtensa_link_hash_table
*htab
;
2505 Elf_Internal_Shdr
*symtab_hdr
;
2506 Elf_Internal_Rela
*rel
;
2507 Elf_Internal_Rela
*relend
;
2508 struct elf_link_hash_entry
**sym_hashes
;
2509 property_table_entry
*lit_table
= 0;
2511 char *local_got_tls_types
;
2512 char *error_message
= NULL
;
2513 bfd_size_type input_size
;
2516 if (!xtensa_default_isa
)
2517 xtensa_default_isa
= xtensa_isa_init (0, 0);
2519 if (!is_xtensa_elf (input_bfd
))
2521 bfd_set_error (bfd_error_wrong_format
);
2525 htab
= elf_xtensa_hash_table (info
);
2529 symtab_hdr
= &elf_tdata (input_bfd
)->symtab_hdr
;
2530 sym_hashes
= elf_sym_hashes (input_bfd
);
2531 local_got_tls_types
= elf_xtensa_local_got_tls_type (input_bfd
);
2533 if (elf_hash_table (info
)->dynamic_sections_created
)
2535 ltblsize
= xtensa_read_table_entries (input_bfd
, input_section
,
2536 &lit_table
, XTENSA_LIT_SEC_NAME
,
2542 input_size
= bfd_get_section_limit (input_bfd
, input_section
);
2545 relend
= relocs
+ input_section
->reloc_count
;
2546 for (; rel
< relend
; rel
++)
2549 reloc_howto_type
*howto
;
2550 unsigned long r_symndx
;
2551 struct elf_link_hash_entry
*h
;
2552 Elf_Internal_Sym
*sym
;
2557 bfd_reloc_status_type r
;
2559 bool unresolved_reloc
;
2561 bool dynamic_symbol
;
2563 r_type
= ELF32_R_TYPE (rel
->r_info
);
2564 if (r_type
== (int) R_XTENSA_GNU_VTINHERIT
2565 || r_type
== (int) R_XTENSA_GNU_VTENTRY
)
2568 if (r_type
< 0 || r_type
>= (int) R_XTENSA_max
)
2570 bfd_set_error (bfd_error_bad_value
);
2573 howto
= &elf_howto_table
[r_type
];
2575 r_symndx
= ELF32_R_SYM (rel
->r_info
);
2580 is_weak_undef
= false;
2581 unresolved_reloc
= false;
2584 if (howto
->partial_inplace
&& !bfd_link_relocatable (info
))
2586 /* Because R_XTENSA_32 was made partial_inplace to fix some
2587 problems with DWARF info in partial links, there may be
2588 an addend stored in the contents. Take it out of there
2589 and move it back into the addend field of the reloc. */
2590 rel
->r_addend
+= bfd_get_32 (input_bfd
, contents
+ rel
->r_offset
);
2591 bfd_put_32 (input_bfd
, 0, contents
+ rel
->r_offset
);
2594 if (r_symndx
< symtab_hdr
->sh_info
)
2596 sym
= local_syms
+ r_symndx
;
2597 sym_type
= ELF32_ST_TYPE (sym
->st_info
);
2598 sec
= local_sections
[r_symndx
];
2599 relocation
= _bfd_elf_rela_local_sym (output_bfd
, sym
, &sec
, rel
);
2605 RELOC_FOR_GLOBAL_SYMBOL (info
, input_bfd
, input_section
, rel
,
2606 r_symndx
, symtab_hdr
, sym_hashes
,
2608 unresolved_reloc
, warned
, ignored
);
2611 && !unresolved_reloc
2612 && h
->root
.type
== bfd_link_hash_undefweak
)
2613 is_weak_undef
= true;
2618 if (sec
!= NULL
&& discarded_section (sec
))
2619 RELOC_AGAINST_DISCARDED_SECTION (info
, input_bfd
, input_section
,
2620 rel
, 1, relend
, howto
, 0, contents
);
2622 if (bfd_link_relocatable (info
))
2625 asection
* sym_sec
= get_elf_r_symndx_section (input_bfd
, r_symndx
);
2627 /* This is a relocatable link.
2628 1) If the reloc is against a section symbol, adjust
2629 according to the output section.
2630 2) If there is a new target for this relocation,
2631 the new target will be in the same output section.
2632 We adjust the relocation by the output section
2635 if (relaxing_section
)
2637 /* Check if this references a section in another input file. */
2638 if (!do_fix_for_relocatable_link (rel
, input_bfd
, input_section
,
2643 dest_addr
= sym_sec
->output_section
->vma
+ sym_sec
->output_offset
2644 + get_elf_r_symndx_offset (input_bfd
, r_symndx
) + rel
->r_addend
;
2646 if (r_type
== R_XTENSA_ASM_SIMPLIFY
)
2648 error_message
= NULL
;
2649 /* Convert ASM_SIMPLIFY into the simpler relocation
2650 so that they never escape a relaxing link. */
2651 r
= contract_asm_expansion (contents
, input_size
, rel
,
2653 if (r
!= bfd_reloc_ok
)
2654 (*info
->callbacks
->reloc_dangerous
)
2655 (info
, error_message
,
2656 input_bfd
, input_section
, rel
->r_offset
);
2658 r_type
= ELF32_R_TYPE (rel
->r_info
);
2661 /* This is a relocatable link, so we don't have to change
2662 anything unless the reloc is against a section symbol,
2663 in which case we have to adjust according to where the
2664 section symbol winds up in the output section. */
2665 if (r_symndx
< symtab_hdr
->sh_info
)
2667 sym
= local_syms
+ r_symndx
;
2668 if (ELF_ST_TYPE (sym
->st_info
) == STT_SECTION
)
2670 sec
= local_sections
[r_symndx
];
2671 rel
->r_addend
+= sec
->output_offset
+ sym
->st_value
;
2675 /* If there is an addend with a partial_inplace howto,
2676 then move the addend to the contents. This is a hack
2677 to work around problems with DWARF in relocatable links
2678 with some previous version of BFD. Now we can't easily get
2679 rid of the hack without breaking backward compatibility.... */
2681 howto
= &elf_howto_table
[r_type
];
2682 if (howto
->partial_inplace
&& rel
->r_addend
)
2684 r
= elf_xtensa_do_reloc (howto
, input_bfd
, input_section
,
2685 rel
->r_addend
, contents
,
2686 rel
->r_offset
, false,
2692 /* Put the correct bits in the target instruction, even
2693 though the relocation will still be present in the output
2694 file. This makes disassembly clearer, as well as
2695 allowing loadable kernel modules to work without needing
2696 relocations on anything other than calls and l32r's. */
2698 /* If it is not in the same section, there is nothing we can do. */
2699 if (r_type
>= R_XTENSA_SLOT0_OP
&& r_type
<= R_XTENSA_SLOT14_OP
&&
2700 sym_sec
->output_section
== input_section
->output_section
)
2702 r
= elf_xtensa_do_reloc (howto
, input_bfd
, input_section
,
2703 dest_addr
, contents
,
2704 rel
->r_offset
, false,
2708 if (r
!= bfd_reloc_ok
)
2709 (*info
->callbacks
->reloc_dangerous
)
2710 (info
, error_message
,
2711 input_bfd
, input_section
, rel
->r_offset
);
2713 /* Done with work for relocatable link; continue with next reloc. */
2717 /* This is a final link. */
2719 if (relaxing_section
)
2721 /* Check if this references a section in another input file. */
2722 do_fix_for_final_link (rel
, input_bfd
, input_section
, contents
,
2726 /* Sanity check the address. */
2727 if (rel
->r_offset
>= input_size
2728 && ELF32_R_TYPE (rel
->r_info
) != R_XTENSA_NONE
)
2731 /* xgettext:c-format */
2732 (_("%pB(%pA+%#" PRIx64
"): "
2733 "relocation offset out of range (size=%#" PRIx64
")"),
2734 input_bfd
, input_section
, (uint64_t) rel
->r_offset
,
2735 (uint64_t) input_size
);
2736 bfd_set_error (bfd_error_bad_value
);
2741 name
= h
->root
.root
.string
;
2744 name
= (bfd_elf_string_from_elf_section
2745 (input_bfd
, symtab_hdr
->sh_link
, sym
->st_name
));
2746 if (name
== NULL
|| *name
== '\0')
2747 name
= bfd_section_name (sec
);
2750 if (r_symndx
!= STN_UNDEF
2751 && r_type
!= R_XTENSA_NONE
2753 || h
->root
.type
== bfd_link_hash_defined
2754 || h
->root
.type
== bfd_link_hash_defweak
)
2755 && IS_XTENSA_TLS_RELOC (r_type
) != (sym_type
== STT_TLS
))
2758 ((sym_type
== STT_TLS
2759 /* xgettext:c-format */
2760 ? _("%pB(%pA+%#" PRIx64
"): %s used with TLS symbol %s")
2761 /* xgettext:c-format */
2762 : _("%pB(%pA+%#" PRIx64
"): %s used with non-TLS symbol %s")),
2765 (uint64_t) rel
->r_offset
,
2770 dynamic_symbol
= elf_xtensa_dynamic_symbol_p (h
, info
);
2772 tls_type
= GOT_UNKNOWN
;
2774 tls_type
= elf_xtensa_hash_entry (h
)->tls_type
;
2775 else if (local_got_tls_types
)
2776 tls_type
= local_got_tls_types
[r_symndx
];
2782 if (elf_hash_table (info
)->dynamic_sections_created
2783 && (input_section
->flags
& SEC_ALLOC
) != 0
2784 && (dynamic_symbol
|| bfd_link_pic (info
)))
2786 Elf_Internal_Rela outrel
;
2790 if (dynamic_symbol
&& r_type
== R_XTENSA_PLT
)
2791 srel
= htab
->elf
.srelplt
;
2793 srel
= htab
->elf
.srelgot
;
2795 BFD_ASSERT (srel
!= NULL
);
2798 _bfd_elf_section_offset (output_bfd
, info
,
2799 input_section
, rel
->r_offset
);
2801 if ((outrel
.r_offset
| 1) == (bfd_vma
) -1)
2802 memset (&outrel
, 0, sizeof outrel
);
2805 outrel
.r_offset
+= (input_section
->output_section
->vma
2806 + input_section
->output_offset
);
2808 /* Complain if the relocation is in a read-only section
2809 and not in a literal pool. */
2810 if ((input_section
->flags
& SEC_READONLY
) != 0
2811 && !elf_xtensa_in_literal_pool (lit_table
, ltblsize
,
2815 _("dynamic relocation in read-only section");
2816 (*info
->callbacks
->reloc_dangerous
)
2817 (info
, error_message
,
2818 input_bfd
, input_section
, rel
->r_offset
);
2823 outrel
.r_addend
= rel
->r_addend
;
2826 if (r_type
== R_XTENSA_32
)
2829 ELF32_R_INFO (h
->dynindx
, R_XTENSA_GLOB_DAT
);
2832 else /* r_type == R_XTENSA_PLT */
2835 ELF32_R_INFO (h
->dynindx
, R_XTENSA_JMP_SLOT
);
2837 /* Create the PLT entry and set the initial
2838 contents of the literal entry to the address of
2841 elf_xtensa_create_plt_entry (info
, output_bfd
,
2844 unresolved_reloc
= false;
2846 else if (!is_weak_undef
)
2848 /* Generate a RELATIVE relocation. */
2849 outrel
.r_info
= ELF32_R_INFO (0, R_XTENSA_RELATIVE
);
2850 outrel
.r_addend
= 0;
2858 loc
= (srel
->contents
2859 + srel
->reloc_count
++ * sizeof (Elf32_External_Rela
));
2860 bfd_elf32_swap_reloca_out (output_bfd
, &outrel
, loc
);
2861 BFD_ASSERT (sizeof (Elf32_External_Rela
) * srel
->reloc_count
2864 else if (r_type
== R_XTENSA_ASM_EXPAND
&& dynamic_symbol
)
2866 /* This should only happen for non-PIC code, which is not
2867 supposed to be used on systems with dynamic linking.
2868 Just ignore these relocations. */
2873 case R_XTENSA_TLS_TPOFF
:
2874 /* Switch to LE model for local symbols in an executable. */
2875 if (! bfd_link_dll (info
) && ! dynamic_symbol
)
2877 relocation
= tpoff (info
, relocation
);
2882 case R_XTENSA_TLSDESC_FN
:
2883 case R_XTENSA_TLSDESC_ARG
:
2885 if (r_type
== R_XTENSA_TLSDESC_FN
)
2887 if (! bfd_link_dll (info
) || (tls_type
& GOT_TLS_IE
) != 0)
2888 r_type
= R_XTENSA_NONE
;
2890 else if (r_type
== R_XTENSA_TLSDESC_ARG
)
2892 if (bfd_link_dll (info
))
2894 if ((tls_type
& GOT_TLS_IE
) != 0)
2895 r_type
= R_XTENSA_TLS_TPOFF
;
2899 r_type
= R_XTENSA_TLS_TPOFF
;
2900 if (! dynamic_symbol
)
2902 relocation
= tpoff (info
, relocation
);
2908 if (r_type
== R_XTENSA_NONE
)
2909 /* Nothing to do here; skip to the next reloc. */
2912 if (! elf_hash_table (info
)->dynamic_sections_created
)
2915 _("TLS relocation invalid without dynamic sections");
2916 (*info
->callbacks
->reloc_dangerous
)
2917 (info
, error_message
,
2918 input_bfd
, input_section
, rel
->r_offset
);
2922 Elf_Internal_Rela outrel
;
2924 asection
*srel
= htab
->elf
.srelgot
;
2927 outrel
.r_offset
= (input_section
->output_section
->vma
2928 + input_section
->output_offset
2931 /* Complain if the relocation is in a read-only section
2932 and not in a literal pool. */
2933 if ((input_section
->flags
& SEC_READONLY
) != 0
2934 && ! elf_xtensa_in_literal_pool (lit_table
, ltblsize
,
2938 _("dynamic relocation in read-only section");
2939 (*info
->callbacks
->reloc_dangerous
)
2940 (info
, error_message
,
2941 input_bfd
, input_section
, rel
->r_offset
);
2944 indx
= h
&& h
->dynindx
!= -1 ? h
->dynindx
: 0;
2946 outrel
.r_addend
= relocation
- dtpoff_base (info
);
2948 outrel
.r_addend
= 0;
2951 outrel
.r_info
= ELF32_R_INFO (indx
, r_type
);
2953 unresolved_reloc
= false;
2956 loc
= (srel
->contents
2957 + srel
->reloc_count
++ * sizeof (Elf32_External_Rela
));
2958 bfd_elf32_swap_reloca_out (output_bfd
, &outrel
, loc
);
2959 BFD_ASSERT (sizeof (Elf32_External_Rela
) * srel
->reloc_count
2965 case R_XTENSA_TLS_DTPOFF
:
2966 if (! bfd_link_dll (info
))
2967 /* Switch from LD model to LE model. */
2968 relocation
= tpoff (info
, relocation
);
2970 relocation
-= dtpoff_base (info
);
2973 case R_XTENSA_TLS_FUNC
:
2974 case R_XTENSA_TLS_ARG
:
2975 case R_XTENSA_TLS_CALL
:
2976 /* Check if optimizing to IE or LE model. */
2977 if ((tls_type
& GOT_TLS_IE
) != 0)
2980 (h
&& elf_xtensa_hash_entry (h
) == htab
->tlsbase
);
2981 if (! replace_tls_insn (rel
, input_bfd
, input_section
, contents
,
2982 is_ld_model
, &error_message
))
2983 (*info
->callbacks
->reloc_dangerous
)
2984 (info
, error_message
,
2985 input_bfd
, input_section
, rel
->r_offset
);
2987 if (r_type
!= R_XTENSA_TLS_ARG
|| is_ld_model
)
2989 /* Skip subsequent relocations on the same instruction. */
2990 while (rel
+ 1 < relend
&& rel
[1].r_offset
== rel
->r_offset
)
2997 if (elf_hash_table (info
)->dynamic_sections_created
2998 && dynamic_symbol
&& (is_operand_relocation (r_type
)
2999 || r_type
== R_XTENSA_32_PCREL
))
3002 vsprint_msg ("invalid relocation for dynamic symbol", ": %s",
3003 strlen (name
) + 2, name
);
3004 (*info
->callbacks
->reloc_dangerous
)
3005 (info
, error_message
, input_bfd
, input_section
, rel
->r_offset
);
3011 /* Dynamic relocs are not propagated for SEC_DEBUGGING sections
3012 because such sections are not SEC_ALLOC and thus ld.so will
3013 not process them. */
3014 if (unresolved_reloc
3015 && !((input_section
->flags
& SEC_DEBUGGING
) != 0
3017 && _bfd_elf_section_offset (output_bfd
, info
, input_section
,
3018 rel
->r_offset
) != (bfd_vma
) -1)
3021 /* xgettext:c-format */
3022 (_("%pB(%pA+%#" PRIx64
"): "
3023 "unresolvable %s relocation against symbol `%s'"),
3026 (uint64_t) rel
->r_offset
,
3032 /* TLS optimizations may have changed r_type; update "howto". */
3033 howto
= &elf_howto_table
[r_type
];
3035 /* There's no point in calling bfd_perform_relocation here.
3036 Just go directly to our "special function". */
3037 r
= elf_xtensa_do_reloc (howto
, input_bfd
, input_section
,
3038 relocation
+ rel
->r_addend
,
3039 contents
, rel
->r_offset
, is_weak_undef
,
3042 if (r
!= bfd_reloc_ok
&& !warned
)
3044 BFD_ASSERT (r
== bfd_reloc_dangerous
|| r
== bfd_reloc_other
);
3045 BFD_ASSERT (error_message
!= NULL
);
3047 if (rel
->r_addend
== 0)
3048 error_message
= vsprint_msg (error_message
, ": %s",
3049 strlen (name
) + 2, name
);
3051 error_message
= vsprint_msg (error_message
, ": (%s+0x%x)",
3053 name
, (int) rel
->r_addend
);
3055 (*info
->callbacks
->reloc_dangerous
)
3056 (info
, error_message
, input_bfd
, input_section
, rel
->r_offset
);
3061 input_section
->reloc_done
= true;
3067 /* Finish up dynamic symbol handling. There's not much to do here since
3068 the PLT and GOT entries are all set up by relocate_section. */
3071 elf_xtensa_finish_dynamic_symbol (bfd
*output_bfd ATTRIBUTE_UNUSED
,
3072 struct bfd_link_info
*info ATTRIBUTE_UNUSED
,
3073 struct elf_link_hash_entry
*h
,
3074 Elf_Internal_Sym
*sym
)
3076 if (h
->needs_plt
&& !h
->def_regular
)
3078 /* Mark the symbol as undefined, rather than as defined in
3079 the .plt section. Leave the value alone. */
3080 sym
->st_shndx
= SHN_UNDEF
;
3081 /* If the symbol is weak, we do need to clear the value.
3082 Otherwise, the PLT entry would provide a definition for
3083 the symbol even if the symbol wasn't defined anywhere,
3084 and so the symbol would never be NULL. */
3085 if (!h
->ref_regular_nonweak
)
3089 /* Mark _DYNAMIC and _GLOBAL_OFFSET_TABLE_ as absolute. */
3090 if (h
== elf_hash_table (info
)->hdynamic
3091 || h
== elf_hash_table (info
)->hgot
)
3092 sym
->st_shndx
= SHN_ABS
;
3098 /* Combine adjacent literal table entries in the output. Adjacent
3099 entries within each input section may have been removed during
3100 relaxation, but we repeat the process here, even though it's too late
3101 to shrink the output section, because it's important to minimize the
3102 number of literal table entries to reduce the start-up work for the
3103 runtime linker. Returns the number of remaining table entries or -1
3107 elf_xtensa_combine_prop_entries (bfd
*output_bfd
,
3112 property_table_entry
*table
;
3113 bfd_size_type section_size
, sgotloc_size
;
3117 section_size
= sxtlit
->size
;
3118 if (section_size
== 0)
3121 BFD_ASSERT (section_size
% 8 == 0);
3122 num
= section_size
/ 8;
3124 sgotloc_size
= sgotloc
->size
;
3125 if (sgotloc_size
!= section_size
)
3128 (_("internal inconsistency in size of .got.loc section"));
3132 table
= bfd_malloc (num
* sizeof (property_table_entry
));
3136 /* The ".xt.lit.plt" section has the SEC_IN_MEMORY flag set and this
3137 propagates to the output section, where it doesn't really apply and
3138 where it breaks the following call to bfd_malloc_and_get_section. */
3139 sxtlit
->flags
&= ~SEC_IN_MEMORY
;
3141 if (!bfd_malloc_and_get_section (output_bfd
, sxtlit
, &contents
))
3148 /* There should never be any relocations left at this point, so this
3149 is quite a bit easier than what is done during relaxation. */
3151 /* Copy the raw contents into a property table array and sort it. */
3153 for (n
= 0; n
< num
; n
++)
3155 table
[n
].address
= bfd_get_32 (output_bfd
, &contents
[offset
]);
3156 table
[n
].size
= bfd_get_32 (output_bfd
, &contents
[offset
+ 4]);
3159 qsort (table
, num
, sizeof (property_table_entry
), property_table_compare
);
3161 for (n
= 0; n
< num
; n
++)
3163 bool remove_entry
= false;
3165 if (table
[n
].size
== 0)
3166 remove_entry
= true;
3168 && (table
[n
-1].address
+ table
[n
-1].size
== table
[n
].address
))
3170 table
[n
-1].size
+= table
[n
].size
;
3171 remove_entry
= true;
3176 for (m
= n
; m
< num
- 1; m
++)
3178 table
[m
].address
= table
[m
+1].address
;
3179 table
[m
].size
= table
[m
+1].size
;
3187 /* Copy the data back to the raw contents. */
3189 for (n
= 0; n
< num
; n
++)
3191 bfd_put_32 (output_bfd
, table
[n
].address
, &contents
[offset
]);
3192 bfd_put_32 (output_bfd
, table
[n
].size
, &contents
[offset
+ 4]);
3196 /* Clear the removed bytes. */
3197 if ((bfd_size_type
) (num
* 8) < section_size
)
3198 memset (&contents
[num
* 8], 0, section_size
- num
* 8);
3200 if (! bfd_set_section_contents (output_bfd
, sxtlit
, contents
, 0,
3204 /* Copy the contents to ".got.loc". */
3205 memcpy (sgotloc
->contents
, contents
, section_size
);
3213 /* Finish up the dynamic sections. */
3216 elf_xtensa_finish_dynamic_sections (bfd
*output_bfd
,
3217 struct bfd_link_info
*info
)
3219 struct elf_xtensa_link_hash_table
*htab
;
3221 asection
*sdyn
, *srelplt
, *srelgot
, *sgot
, *sxtlit
, *sgotloc
;
3222 Elf32_External_Dyn
*dyncon
, *dynconend
;
3223 int num_xtlit_entries
= 0;
3225 if (! elf_hash_table (info
)->dynamic_sections_created
)
3228 htab
= elf_xtensa_hash_table (info
);
3232 dynobj
= elf_hash_table (info
)->dynobj
;
3233 sdyn
= bfd_get_linker_section (dynobj
, ".dynamic");
3234 BFD_ASSERT (sdyn
!= NULL
);
3236 /* Set the first entry in the global offset table to the address of
3237 the dynamic section. */
3238 sgot
= htab
->elf
.sgot
;
3241 BFD_ASSERT (sgot
->size
== 4);
3243 bfd_put_32 (output_bfd
, 0, sgot
->contents
);
3245 bfd_put_32 (output_bfd
,
3246 sdyn
->output_section
->vma
+ sdyn
->output_offset
,
3250 srelplt
= htab
->elf
.srelplt
;
3251 srelgot
= htab
->elf
.srelgot
;
3252 if (srelplt
&& srelplt
->size
!= 0)
3254 asection
*sgotplt
, *spltlittbl
;
3255 int chunk
, plt_chunks
, plt_entries
;
3256 Elf_Internal_Rela irela
;
3258 unsigned rtld_reloc
;
3260 spltlittbl
= htab
->spltlittbl
;
3261 BFD_ASSERT (srelgot
!= NULL
&& spltlittbl
!= NULL
);
3263 /* Find the first XTENSA_RTLD relocation. Presumably the rest
3264 of them follow immediately after.... */
3265 for (rtld_reloc
= 0; rtld_reloc
< srelgot
->reloc_count
; rtld_reloc
++)
3267 loc
= srelgot
->contents
+ rtld_reloc
* sizeof (Elf32_External_Rela
);
3268 bfd_elf32_swap_reloca_in (output_bfd
, loc
, &irela
);
3269 if (ELF32_R_TYPE (irela
.r_info
) == R_XTENSA_RTLD
)
3272 BFD_ASSERT (rtld_reloc
< srelgot
->reloc_count
);
3274 plt_entries
= srelplt
->size
/ sizeof (Elf32_External_Rela
);
3276 (plt_entries
+ PLT_ENTRIES_PER_CHUNK
- 1) / PLT_ENTRIES_PER_CHUNK
;
3278 for (chunk
= 0; chunk
< plt_chunks
; chunk
++)
3280 int chunk_entries
= 0;
3282 sgotplt
= elf_xtensa_get_gotplt_section (info
, chunk
);
3283 BFD_ASSERT (sgotplt
!= NULL
);
3285 /* Emit special RTLD relocations for the first two entries in
3286 each chunk of the .got.plt section. */
3288 loc
= srelgot
->contents
+ rtld_reloc
* sizeof (Elf32_External_Rela
);
3289 bfd_elf32_swap_reloca_in (output_bfd
, loc
, &irela
);
3290 BFD_ASSERT (ELF32_R_TYPE (irela
.r_info
) == R_XTENSA_RTLD
);
3291 irela
.r_offset
= (sgotplt
->output_section
->vma
3292 + sgotplt
->output_offset
);
3293 irela
.r_addend
= 1; /* tell rtld to set value to resolver function */
3294 bfd_elf32_swap_reloca_out (output_bfd
, &irela
, loc
);
3296 BFD_ASSERT (rtld_reloc
<= srelgot
->reloc_count
);
3298 /* Next literal immediately follows the first. */
3299 loc
+= sizeof (Elf32_External_Rela
);
3300 bfd_elf32_swap_reloca_in (output_bfd
, loc
, &irela
);
3301 BFD_ASSERT (ELF32_R_TYPE (irela
.r_info
) == R_XTENSA_RTLD
);
3302 irela
.r_offset
= (sgotplt
->output_section
->vma
3303 + sgotplt
->output_offset
+ 4);
3304 /* Tell rtld to set value to object's link map. */
3306 bfd_elf32_swap_reloca_out (output_bfd
, &irela
, loc
);
3308 BFD_ASSERT (rtld_reloc
<= srelgot
->reloc_count
);
3310 /* Fill in the literal table. */
3311 if (chunk
< plt_chunks
- 1)
3312 chunk_entries
= PLT_ENTRIES_PER_CHUNK
;
3314 chunk_entries
= plt_entries
- (chunk
* PLT_ENTRIES_PER_CHUNK
);
3316 BFD_ASSERT ((unsigned) (chunk
+ 1) * 8 <= spltlittbl
->size
);
3317 bfd_put_32 (output_bfd
,
3318 sgotplt
->output_section
->vma
+ sgotplt
->output_offset
,
3319 spltlittbl
->contents
+ (chunk
* 8) + 0);
3320 bfd_put_32 (output_bfd
,
3321 8 + (chunk_entries
* 4),
3322 spltlittbl
->contents
+ (chunk
* 8) + 4);
3325 /* The .xt.lit.plt section has just been modified. This must
3326 happen before the code below which combines adjacent literal
3327 table entries, and the .xt.lit.plt contents have to be forced to
3329 if (! bfd_set_section_contents (output_bfd
,
3330 spltlittbl
->output_section
,
3331 spltlittbl
->contents
,
3332 spltlittbl
->output_offset
,
3335 /* Clear SEC_HAS_CONTENTS so the contents won't be output again. */
3336 spltlittbl
->flags
&= ~SEC_HAS_CONTENTS
;
3339 /* All the dynamic relocations have been emitted at this point.
3340 Make sure the relocation sections are the correct size. */
3341 if ((srelgot
&& srelgot
->size
!= (sizeof (Elf32_External_Rela
)
3342 * srelgot
->reloc_count
))
3343 || (srelplt
&& srelplt
->size
!= (sizeof (Elf32_External_Rela
)
3344 * srelplt
->reloc_count
)))
3347 /* Combine adjacent literal table entries. */
3348 BFD_ASSERT (! bfd_link_relocatable (info
));
3349 sxtlit
= bfd_get_section_by_name (output_bfd
, ".xt.lit");
3350 sgotloc
= htab
->sgotloc
;
3351 BFD_ASSERT (sgotloc
);
3355 elf_xtensa_combine_prop_entries (output_bfd
, sxtlit
, sgotloc
);
3356 if (num_xtlit_entries
< 0)
3360 dyncon
= (Elf32_External_Dyn
*) sdyn
->contents
;
3361 dynconend
= (Elf32_External_Dyn
*) (sdyn
->contents
+ sdyn
->size
);
3362 for (; dyncon
< dynconend
; dyncon
++)
3364 Elf_Internal_Dyn dyn
;
3366 bfd_elf32_swap_dyn_in (dynobj
, dyncon
, &dyn
);
3373 case DT_XTENSA_GOT_LOC_SZ
:
3374 dyn
.d_un
.d_val
= num_xtlit_entries
;
3377 case DT_XTENSA_GOT_LOC_OFF
:
3378 dyn
.d_un
.d_ptr
= (htab
->sgotloc
->output_section
->vma
3379 + htab
->sgotloc
->output_offset
);
3383 dyn
.d_un
.d_ptr
= (htab
->elf
.sgot
->output_section
->vma
3384 + htab
->elf
.sgot
->output_offset
);
3388 dyn
.d_un
.d_ptr
= (htab
->elf
.srelplt
->output_section
->vma
3389 + htab
->elf
.srelplt
->output_offset
);
3393 dyn
.d_un
.d_val
= htab
->elf
.srelplt
->size
;
3397 bfd_elf32_swap_dyn_out (output_bfd
, &dyn
, dyncon
);
3404 /* Functions for dealing with the e_flags field. */
3406 /* Merge backend specific data from an object file to the output
3407 object file when linking. */
3410 elf_xtensa_merge_private_bfd_data (bfd
*ibfd
, struct bfd_link_info
*info
)
3412 bfd
*obfd
= info
->output_bfd
;
3413 unsigned out_mach
, in_mach
;
3414 flagword out_flag
, in_flag
;
3416 /* Check if we have the same endianness. */
3417 if (!_bfd_generic_verify_endian_match (ibfd
, info
))
3420 /* Don't even pretend to support mixed-format linking. */
3421 if (bfd_get_flavour (ibfd
) != bfd_target_elf_flavour
3422 || bfd_get_flavour (obfd
) != bfd_target_elf_flavour
)
3425 out_flag
= elf_elfheader (obfd
)->e_flags
;
3426 in_flag
= elf_elfheader (ibfd
)->e_flags
;
3428 out_mach
= out_flag
& EF_XTENSA_MACH
;
3429 in_mach
= in_flag
& EF_XTENSA_MACH
;
3430 if (out_mach
!= in_mach
)
3433 /* xgettext:c-format */
3434 (_("%pB: incompatible machine type; output is 0x%x; input is 0x%x"),
3435 ibfd
, out_mach
, in_mach
);
3436 bfd_set_error (bfd_error_wrong_format
);
3440 if (! elf_flags_init (obfd
))
3442 elf_flags_init (obfd
) = true;
3443 elf_elfheader (obfd
)->e_flags
= in_flag
;
3445 if (bfd_get_arch (obfd
) == bfd_get_arch (ibfd
)
3446 && bfd_get_arch_info (obfd
)->the_default
)
3447 return bfd_set_arch_mach (obfd
, bfd_get_arch (ibfd
),
3448 bfd_get_mach (ibfd
));
3453 if ((out_flag
& EF_XTENSA_XT_INSN
) != (in_flag
& EF_XTENSA_XT_INSN
))
3454 elf_elfheader (obfd
)->e_flags
&= (~ EF_XTENSA_XT_INSN
);
3456 if ((out_flag
& EF_XTENSA_XT_LIT
) != (in_flag
& EF_XTENSA_XT_LIT
))
3457 elf_elfheader (obfd
)->e_flags
&= (~ EF_XTENSA_XT_LIT
);
3464 elf_xtensa_set_private_flags (bfd
*abfd
, flagword flags
)
3466 BFD_ASSERT (!elf_flags_init (abfd
)
3467 || elf_elfheader (abfd
)->e_flags
== flags
);
3469 elf_elfheader (abfd
)->e_flags
|= flags
;
3470 elf_flags_init (abfd
) = true;
3477 elf_xtensa_print_private_bfd_data (bfd
*abfd
, void *farg
)
3479 FILE *f
= (FILE *) farg
;
3480 flagword e_flags
= elf_elfheader (abfd
)->e_flags
;
3482 fprintf (f
, "\nXtensa header:\n");
3483 if ((e_flags
& EF_XTENSA_MACH
) == E_XTENSA_MACH
)
3484 fprintf (f
, "\nMachine = Base\n");
3486 fprintf (f
, "\nMachine Id = 0x%x\n", e_flags
& EF_XTENSA_MACH
);
3488 fprintf (f
, "Insn tables = %s\n",
3489 (e_flags
& EF_XTENSA_XT_INSN
) ? "true" : "false");
3491 fprintf (f
, "Literal tables = %s\n",
3492 (e_flags
& EF_XTENSA_XT_LIT
) ? "true" : "false");
3494 return _bfd_elf_print_private_bfd_data (abfd
, farg
);
3498 /* Set the right machine number for an Xtensa ELF file. */
3501 elf_xtensa_object_p (bfd
*abfd
)
3504 unsigned long arch
= elf_elfheader (abfd
)->e_flags
& EF_XTENSA_MACH
;
3509 mach
= bfd_mach_xtensa
;
3515 (void) bfd_default_set_arch_mach (abfd
, bfd_arch_xtensa
, mach
);
3520 /* The final processing done just before writing out an Xtensa ELF object
3521 file. This gets the Xtensa architecture right based on the machine
3525 elf_xtensa_final_write_processing (bfd
*abfd
)
3528 unsigned long val
= elf_elfheader (abfd
)->e_flags
& EF_XTENSA_MACH
;
3530 switch (mach
= bfd_get_mach (abfd
))
3532 case bfd_mach_xtensa
:
3533 val
= E_XTENSA_MACH
;
3539 elf_elfheader (abfd
)->e_flags
&= ~EF_XTENSA_MACH
;
3540 elf_elfheader (abfd
)->e_flags
|= val
;
3541 return _bfd_elf_final_write_processing (abfd
);
3545 static enum elf_reloc_type_class
3546 elf_xtensa_reloc_type_class (const struct bfd_link_info
*info ATTRIBUTE_UNUSED
,
3547 const asection
*rel_sec ATTRIBUTE_UNUSED
,
3548 const Elf_Internal_Rela
*rela
)
3550 switch ((int) ELF32_R_TYPE (rela
->r_info
))
3552 case R_XTENSA_RELATIVE
:
3553 return reloc_class_relative
;
3554 case R_XTENSA_JMP_SLOT
:
3555 return reloc_class_plt
;
3557 return reloc_class_normal
;
3563 elf_xtensa_discard_info_for_section (bfd
*abfd
,
3564 struct elf_reloc_cookie
*cookie
,
3565 struct bfd_link_info
*info
,
3569 bfd_vma offset
, actual_offset
;
3570 bfd_size_type removed_bytes
= 0;
3571 bfd_size_type entry_size
;
3573 if (sec
->output_section
3574 && bfd_is_abs_section (sec
->output_section
))
3577 if (xtensa_is_proptable_section (sec
))
3582 if (sec
->size
== 0 || sec
->size
% entry_size
!= 0)
3585 contents
= retrieve_contents (abfd
, sec
, info
->keep_memory
);
3589 cookie
->rels
= retrieve_internal_relocs (abfd
, sec
, info
->keep_memory
);
3592 release_contents (sec
, contents
);
3596 /* Sort the relocations. They should already be in order when
3597 relaxation is enabled, but it might not be. */
3598 qsort (cookie
->rels
, sec
->reloc_count
, sizeof (Elf_Internal_Rela
),
3599 internal_reloc_compare
);
3601 cookie
->rel
= cookie
->rels
;
3602 cookie
->relend
= cookie
->rels
+ sec
->reloc_count
;
3604 for (offset
= 0; offset
< sec
->size
; offset
+= entry_size
)
3606 actual_offset
= offset
- removed_bytes
;
3608 /* The ...symbol_deleted_p function will skip over relocs but it
3609 won't adjust their offsets, so do that here. */
3610 while (cookie
->rel
< cookie
->relend
3611 && cookie
->rel
->r_offset
< offset
)
3613 cookie
->rel
->r_offset
-= removed_bytes
;
3617 while (cookie
->rel
< cookie
->relend
3618 && cookie
->rel
->r_offset
== offset
)
3620 if (bfd_elf_reloc_symbol_deleted_p (offset
, cookie
))
3622 /* Remove the table entry. (If the reloc type is NONE, then
3623 the entry has already been merged with another and deleted
3624 during relaxation.) */
3625 if (ELF32_R_TYPE (cookie
->rel
->r_info
) != R_XTENSA_NONE
)
3627 /* Shift the contents up. */
3628 if (offset
+ entry_size
< sec
->size
)
3629 memmove (&contents
[actual_offset
],
3630 &contents
[actual_offset
+ entry_size
],
3631 sec
->size
- offset
- entry_size
);
3632 removed_bytes
+= entry_size
;
3635 /* Remove this relocation. */
3636 cookie
->rel
->r_info
= ELF32_R_INFO (0, R_XTENSA_NONE
);
3639 /* Adjust the relocation offset for previous removals. This
3640 should not be done before calling ...symbol_deleted_p
3641 because it might mess up the offset comparisons there.
3642 Make sure the offset doesn't underflow in the case where
3643 the first entry is removed. */
3644 if (cookie
->rel
->r_offset
>= removed_bytes
)
3645 cookie
->rel
->r_offset
-= removed_bytes
;
3647 cookie
->rel
->r_offset
= 0;
3653 if (removed_bytes
!= 0)
3655 /* Adjust any remaining relocs (shouldn't be any). */
3656 for (; cookie
->rel
< cookie
->relend
; cookie
->rel
++)
3658 if (cookie
->rel
->r_offset
>= removed_bytes
)
3659 cookie
->rel
->r_offset
-= removed_bytes
;
3661 cookie
->rel
->r_offset
= 0;
3664 /* Clear the removed bytes. */
3665 memset (&contents
[sec
->size
- removed_bytes
], 0, removed_bytes
);
3667 pin_contents (sec
, contents
);
3668 pin_internal_relocs (sec
, cookie
->rels
);
3671 if (sec
->rawsize
== 0)
3672 sec
->rawsize
= sec
->size
;
3673 sec
->size
-= removed_bytes
;
3675 if (xtensa_is_littable_section (sec
))
3677 asection
*sgotloc
= elf_xtensa_hash_table (info
)->sgotloc
;
3679 sgotloc
->size
-= removed_bytes
;
3684 release_contents (sec
, contents
);
3685 release_internal_relocs (sec
, cookie
->rels
);
3688 return (removed_bytes
!= 0);
3693 elf_xtensa_discard_info (bfd
*abfd
,
3694 struct elf_reloc_cookie
*cookie
,
3695 struct bfd_link_info
*info
)
3698 bool changed
= false;
3700 for (sec
= abfd
->sections
; sec
!= NULL
; sec
= sec
->next
)
3702 if (xtensa_is_property_section (sec
))
3704 if (elf_xtensa_discard_info_for_section (abfd
, cookie
, info
, sec
))
3714 elf_xtensa_ignore_discarded_relocs (asection
*sec
)
3716 return xtensa_is_property_section (sec
);
3721 elf_xtensa_action_discarded (asection
*sec
)
3723 if (strcmp (".xt_except_table", sec
->name
) == 0)
3726 if (strcmp (".xt_except_desc", sec
->name
) == 0)
3729 return _bfd_elf_default_action_discarded (sec
);
3733 /* Support for core dump NOTE sections. */
3736 elf_xtensa_grok_prstatus (bfd
*abfd
, Elf_Internal_Note
*note
)
3741 if (elf_tdata (abfd
) == NULL
3742 || elf_tdata (abfd
)->core
== NULL
)
3745 /* The size for Xtensa is variable, so don't try to recognize the format
3746 based on the size. Just assume this is GNU/Linux. */
3747 if (note
== NULL
|| note
->descsz
< 28)
3751 elf_tdata (abfd
)->core
->signal
= bfd_get_16 (abfd
, note
->descdata
+ 12);
3754 elf_tdata (abfd
)->core
->lwpid
= bfd_get_32 (abfd
, note
->descdata
+ 24);
3758 size
= note
->descsz
- offset
- 4;
3760 /* Make a ".reg/999" section. */
3761 return _bfd_elfcore_make_pseudosection (abfd
, ".reg",
3762 size
, note
->descpos
+ offset
);
3766 elf_xtensa_grok_psinfo (bfd
*abfd
, Elf_Internal_Note
*note
)
3768 switch (note
->descsz
)
3773 case 128: /* GNU/Linux elf_prpsinfo */
3774 elf_tdata (abfd
)->core
->program
3775 = _bfd_elfcore_strndup (abfd
, note
->descdata
+ 32, 16);
3776 elf_tdata (abfd
)->core
->command
3777 = _bfd_elfcore_strndup (abfd
, note
->descdata
+ 48, 80);
3780 /* Note that for some reason, a spurious space is tacked
3781 onto the end of the args in some (at least one anyway)
3782 implementations, so strip it off if it exists. */
3785 char *command
= elf_tdata (abfd
)->core
->command
;
3786 int n
= strlen (command
);
3788 if (0 < n
&& command
[n
- 1] == ' ')
3789 command
[n
- 1] = '\0';
3796 /* Generic Xtensa configurability stuff. */
3798 static xtensa_opcode callx0_op
= XTENSA_UNDEFINED
;
3799 static xtensa_opcode callx4_op
= XTENSA_UNDEFINED
;
3800 static xtensa_opcode callx8_op
= XTENSA_UNDEFINED
;
3801 static xtensa_opcode callx12_op
= XTENSA_UNDEFINED
;
3802 static xtensa_opcode call0_op
= XTENSA_UNDEFINED
;
3803 static xtensa_opcode call4_op
= XTENSA_UNDEFINED
;
3804 static xtensa_opcode call8_op
= XTENSA_UNDEFINED
;
3805 static xtensa_opcode call12_op
= XTENSA_UNDEFINED
;
3808 init_call_opcodes (void)
3810 if (callx0_op
== XTENSA_UNDEFINED
)
3812 callx0_op
= xtensa_opcode_lookup (xtensa_default_isa
, "callx0");
3813 callx4_op
= xtensa_opcode_lookup (xtensa_default_isa
, "callx4");
3814 callx8_op
= xtensa_opcode_lookup (xtensa_default_isa
, "callx8");
3815 callx12_op
= xtensa_opcode_lookup (xtensa_default_isa
, "callx12");
3816 call0_op
= xtensa_opcode_lookup (xtensa_default_isa
, "call0");
3817 call4_op
= xtensa_opcode_lookup (xtensa_default_isa
, "call4");
3818 call8_op
= xtensa_opcode_lookup (xtensa_default_isa
, "call8");
3819 call12_op
= xtensa_opcode_lookup (xtensa_default_isa
, "call12");
3825 is_indirect_call_opcode (xtensa_opcode opcode
)
3827 init_call_opcodes ();
3828 return (opcode
== callx0_op
3829 || opcode
== callx4_op
3830 || opcode
== callx8_op
3831 || opcode
== callx12_op
);
3836 is_direct_call_opcode (xtensa_opcode opcode
)
3838 init_call_opcodes ();
3839 return (opcode
== call0_op
3840 || opcode
== call4_op
3841 || opcode
== call8_op
3842 || opcode
== call12_op
);
3847 is_windowed_call_opcode (xtensa_opcode opcode
)
3849 init_call_opcodes ();
3850 return (opcode
== call4_op
3851 || opcode
== call8_op
3852 || opcode
== call12_op
3853 || opcode
== callx4_op
3854 || opcode
== callx8_op
3855 || opcode
== callx12_op
);
3860 get_indirect_call_dest_reg (xtensa_opcode opcode
, unsigned *pdst
)
3862 unsigned dst
= (unsigned) -1;
3864 init_call_opcodes ();
3865 if (opcode
== callx0_op
)
3867 else if (opcode
== callx4_op
)
3869 else if (opcode
== callx8_op
)
3871 else if (opcode
== callx12_op
)
3874 if (dst
== (unsigned) -1)
3882 static xtensa_opcode
3883 get_const16_opcode (void)
3885 static bool done_lookup
= false;
3886 static xtensa_opcode const16_opcode
= XTENSA_UNDEFINED
;
3889 const16_opcode
= xtensa_opcode_lookup (xtensa_default_isa
, "const16");
3892 return const16_opcode
;
3896 static xtensa_opcode
3897 get_l32r_opcode (void)
3899 static xtensa_opcode l32r_opcode
= XTENSA_UNDEFINED
;
3900 static bool done_lookup
= false;
3904 l32r_opcode
= xtensa_opcode_lookup (xtensa_default_isa
, "l32r");
3912 l32r_offset (bfd_vma addr
, bfd_vma pc
)
3916 offset
= addr
- ((pc
+3) & -4);
3917 BFD_ASSERT ((offset
& ((1 << 2) - 1)) == 0);
3918 offset
= (signed int) offset
>> 2;
3919 BFD_ASSERT ((signed int) offset
>> 16 == -1);
3924 static xtensa_opcode
3925 get_rsr_lend_opcode (void)
3927 static xtensa_opcode rsr_lend_opcode
= XTENSA_UNDEFINED
;
3928 static bool done_lookup
= false;
3931 rsr_lend_opcode
= xtensa_opcode_lookup (xtensa_default_isa
, "rsr.lend");
3934 return rsr_lend_opcode
;
3937 static xtensa_opcode
3938 get_wsr_lbeg_opcode (void)
3940 static xtensa_opcode wsr_lbeg_opcode
= XTENSA_UNDEFINED
;
3941 static bool done_lookup
= false;
3944 wsr_lbeg_opcode
= xtensa_opcode_lookup (xtensa_default_isa
, "wsr.lbeg");
3947 return wsr_lbeg_opcode
;
3952 get_relocation_opnd (xtensa_opcode opcode
, int r_type
)
3954 xtensa_isa isa
= xtensa_default_isa
;
3955 int last_immed
, last_opnd
, opi
;
3957 if (opcode
== XTENSA_UNDEFINED
)
3958 return XTENSA_UNDEFINED
;
3960 /* Find the last visible PC-relative immediate operand for the opcode.
3961 If there are no PC-relative immediates, then choose the last visible
3962 immediate; otherwise, fail and return XTENSA_UNDEFINED. */
3963 last_immed
= XTENSA_UNDEFINED
;
3964 last_opnd
= xtensa_opcode_num_operands (isa
, opcode
);
3965 for (opi
= last_opnd
- 1; opi
>= 0; opi
--)
3967 if (xtensa_operand_is_visible (isa
, opcode
, opi
) == 0)
3969 if (xtensa_operand_is_PCrelative (isa
, opcode
, opi
) == 1)
3974 if (last_immed
== XTENSA_UNDEFINED
3975 && xtensa_operand_is_register (isa
, opcode
, opi
) == 0)
3979 return XTENSA_UNDEFINED
;
3981 /* If the operand number was specified in an old-style relocation,
3982 check for consistency with the operand computed above. */
3983 if (r_type
>= R_XTENSA_OP0
&& r_type
<= R_XTENSA_OP2
)
3985 int reloc_opnd
= r_type
- R_XTENSA_OP0
;
3986 if (reloc_opnd
!= last_immed
)
3987 return XTENSA_UNDEFINED
;
3995 get_relocation_slot (int r_type
)
4005 if (r_type
>= R_XTENSA_SLOT0_OP
&& r_type
<= R_XTENSA_SLOT14_OP
)
4006 return r_type
- R_XTENSA_SLOT0_OP
;
4007 if (r_type
>= R_XTENSA_SLOT0_ALT
&& r_type
<= R_XTENSA_SLOT14_ALT
)
4008 return r_type
- R_XTENSA_SLOT0_ALT
;
4012 return XTENSA_UNDEFINED
;
4016 /* Get the opcode for a relocation. */
4018 static xtensa_opcode
4019 get_relocation_opcode (bfd
*abfd
,
4022 Elf_Internal_Rela
*irel
)
4024 static xtensa_insnbuf ibuff
= NULL
;
4025 static xtensa_insnbuf sbuff
= NULL
;
4026 xtensa_isa isa
= xtensa_default_isa
;
4030 if (contents
== NULL
)
4031 return XTENSA_UNDEFINED
;
4033 if (bfd_get_section_limit (abfd
, sec
) <= irel
->r_offset
)
4034 return XTENSA_UNDEFINED
;
4038 ibuff
= xtensa_insnbuf_alloc (isa
);
4039 sbuff
= xtensa_insnbuf_alloc (isa
);
4042 /* Decode the instruction. */
4043 xtensa_insnbuf_from_chars (isa
, ibuff
, &contents
[irel
->r_offset
],
4044 sec
->size
- irel
->r_offset
);
4045 fmt
= xtensa_format_decode (isa
, ibuff
);
4046 slot
= get_relocation_slot (ELF32_R_TYPE (irel
->r_info
));
4047 if (slot
== XTENSA_UNDEFINED
)
4048 return XTENSA_UNDEFINED
;
4049 xtensa_format_get_slot (isa
, fmt
, slot
, ibuff
, sbuff
);
4050 return xtensa_opcode_decode (isa
, fmt
, slot
, sbuff
);
4055 is_l32r_relocation (bfd
*abfd
,
4058 Elf_Internal_Rela
*irel
)
4060 xtensa_opcode opcode
;
4061 if (!is_operand_relocation (ELF32_R_TYPE (irel
->r_info
)))
4063 opcode
= get_relocation_opcode (abfd
, sec
, contents
, irel
);
4064 return (opcode
== get_l32r_opcode ());
4068 static bfd_size_type
4069 get_asm_simplify_size (bfd_byte
*contents
,
4070 bfd_size_type content_len
,
4071 bfd_size_type offset
)
4073 bfd_size_type insnlen
, size
= 0;
4075 /* Decode the size of the next two instructions. */
4076 insnlen
= insn_decode_len (contents
, content_len
, offset
);
4082 insnlen
= insn_decode_len (contents
, content_len
, offset
+ size
);
4092 is_alt_relocation (int r_type
)
4094 return (r_type
>= R_XTENSA_SLOT0_ALT
4095 && r_type
<= R_XTENSA_SLOT14_ALT
);
4100 is_operand_relocation (int r_type
)
4110 if (r_type
>= R_XTENSA_SLOT0_OP
&& r_type
<= R_XTENSA_SLOT14_OP
)
4112 if (r_type
>= R_XTENSA_SLOT0_ALT
&& r_type
<= R_XTENSA_SLOT14_ALT
)
4121 #define MIN_INSN_LENGTH 2
4123 /* Return 0 if it fails to decode. */
4126 insn_decode_len (bfd_byte
*contents
,
4127 bfd_size_type content_len
,
4128 bfd_size_type offset
)
4131 xtensa_isa isa
= xtensa_default_isa
;
4133 static xtensa_insnbuf ibuff
= NULL
;
4135 if (offset
+ MIN_INSN_LENGTH
> content_len
)
4139 ibuff
= xtensa_insnbuf_alloc (isa
);
4140 xtensa_insnbuf_from_chars (isa
, ibuff
, &contents
[offset
],
4141 content_len
- offset
);
4142 fmt
= xtensa_format_decode (isa
, ibuff
);
4143 if (fmt
== XTENSA_UNDEFINED
)
4145 insn_len
= xtensa_format_length (isa
, fmt
);
4146 if (insn_len
== XTENSA_UNDEFINED
)
4152 insn_num_slots (bfd_byte
*contents
,
4153 bfd_size_type content_len
,
4154 bfd_size_type offset
)
4156 xtensa_isa isa
= xtensa_default_isa
;
4158 static xtensa_insnbuf ibuff
= NULL
;
4160 if (offset
+ MIN_INSN_LENGTH
> content_len
)
4161 return XTENSA_UNDEFINED
;
4164 ibuff
= xtensa_insnbuf_alloc (isa
);
4165 xtensa_insnbuf_from_chars (isa
, ibuff
, &contents
[offset
],
4166 content_len
- offset
);
4167 fmt
= xtensa_format_decode (isa
, ibuff
);
4168 if (fmt
== XTENSA_UNDEFINED
)
4169 return XTENSA_UNDEFINED
;
4170 return xtensa_format_num_slots (isa
, fmt
);
4174 /* Decode the opcode for a single slot instruction.
4175 Return 0 if it fails to decode or the instruction is multi-slot. */
4178 insn_decode_opcode (bfd_byte
*contents
,
4179 bfd_size_type content_len
,
4180 bfd_size_type offset
,
4183 xtensa_isa isa
= xtensa_default_isa
;
4185 static xtensa_insnbuf insnbuf
= NULL
;
4186 static xtensa_insnbuf slotbuf
= NULL
;
4188 if (offset
+ MIN_INSN_LENGTH
> content_len
)
4189 return XTENSA_UNDEFINED
;
4191 if (insnbuf
== NULL
)
4193 insnbuf
= xtensa_insnbuf_alloc (isa
);
4194 slotbuf
= xtensa_insnbuf_alloc (isa
);
4197 xtensa_insnbuf_from_chars (isa
, insnbuf
, &contents
[offset
],
4198 content_len
- offset
);
4199 fmt
= xtensa_format_decode (isa
, insnbuf
);
4200 if (fmt
== XTENSA_UNDEFINED
)
4201 return XTENSA_UNDEFINED
;
4203 if (slot
>= xtensa_format_num_slots (isa
, fmt
))
4204 return XTENSA_UNDEFINED
;
4206 xtensa_format_get_slot (isa
, fmt
, slot
, insnbuf
, slotbuf
);
4207 return xtensa_opcode_decode (isa
, fmt
, slot
, slotbuf
);
4211 /* The offset is the offset in the contents.
4212 The address is the address of that offset. */
4215 check_branch_target_aligned (bfd_byte
*contents
,
4216 bfd_size_type content_length
,
4220 bfd_size_type insn_len
= insn_decode_len (contents
, content_length
, offset
);
4223 return check_branch_target_aligned_address (address
, insn_len
);
4228 check_loop_aligned (bfd_byte
*contents
,
4229 bfd_size_type content_length
,
4233 bfd_size_type loop_len
, insn_len
;
4234 xtensa_opcode opcode
;
4236 opcode
= insn_decode_opcode (contents
, content_length
, offset
, 0);
4237 if (opcode
== XTENSA_UNDEFINED
4238 || xtensa_opcode_is_loop (xtensa_default_isa
, opcode
) != 1)
4244 loop_len
= insn_decode_len (contents
, content_length
, offset
);
4245 insn_len
= insn_decode_len (contents
, content_length
, offset
+ loop_len
);
4246 if (loop_len
== 0 || insn_len
== 0)
4252 /* If this is relaxed loop, analyze first instruction of the actual loop
4253 body. It must be at offset 27 from the loop instruction address. */
4255 && insn_num_slots (contents
, content_length
, offset
+ loop_len
) == 1
4256 && insn_decode_opcode (contents
, content_length
,
4257 offset
+ loop_len
, 0) == get_rsr_lend_opcode()
4258 && insn_decode_len (contents
, content_length
, offset
+ loop_len
+ 3) == 3
4259 && insn_num_slots (contents
, content_length
, offset
+ loop_len
+ 3) == 1
4260 && insn_decode_opcode (contents
, content_length
,
4261 offset
+ loop_len
+ 3, 0) == get_wsr_lbeg_opcode())
4264 insn_len
= insn_decode_len (contents
, content_length
, offset
+ loop_len
);
4266 return check_branch_target_aligned_address (address
+ loop_len
, insn_len
);
4271 check_branch_target_aligned_address (bfd_vma addr
, int len
)
4274 return (addr
% 8 == 0);
4275 return ((addr
>> 2) == ((addr
+ len
- 1) >> 2));
4279 /* Instruction widening and narrowing. */
4281 /* When FLIX is available we need to access certain instructions only
4282 when they are 16-bit or 24-bit instructions. This table caches
4283 information about such instructions by walking through all the
4284 opcodes and finding the smallest single-slot format into which each
4287 static xtensa_format
*op_single_fmt_table
= NULL
;
4291 init_op_single_format_table (void)
4293 xtensa_isa isa
= xtensa_default_isa
;
4294 xtensa_insnbuf ibuf
;
4295 xtensa_opcode opcode
;
4299 if (op_single_fmt_table
)
4302 ibuf
= xtensa_insnbuf_alloc (isa
);
4303 num_opcodes
= xtensa_isa_num_opcodes (isa
);
4305 op_single_fmt_table
= (xtensa_format
*)
4306 bfd_malloc (sizeof (xtensa_format
) * num_opcodes
);
4307 for (opcode
= 0; opcode
< num_opcodes
; opcode
++)
4309 op_single_fmt_table
[opcode
] = XTENSA_UNDEFINED
;
4310 for (fmt
= 0; fmt
< xtensa_isa_num_formats (isa
); fmt
++)
4312 if (xtensa_format_num_slots (isa
, fmt
) == 1
4313 && xtensa_opcode_encode (isa
, fmt
, 0, ibuf
, opcode
) == 0)
4315 xtensa_opcode old_fmt
= op_single_fmt_table
[opcode
];
4316 int fmt_length
= xtensa_format_length (isa
, fmt
);
4317 if (old_fmt
== XTENSA_UNDEFINED
4318 || fmt_length
< xtensa_format_length (isa
, old_fmt
))
4319 op_single_fmt_table
[opcode
] = fmt
;
4323 xtensa_insnbuf_free (isa
, ibuf
);
4327 static xtensa_format
4328 get_single_format (xtensa_opcode opcode
)
4330 init_op_single_format_table ();
4331 return op_single_fmt_table
[opcode
];
4335 /* For the set of narrowable instructions we do NOT include the
4336 narrowings beqz -> beqz.n or bnez -> bnez.n because of complexities
4337 involved during linker relaxation that may require these to
4338 re-expand in some conditions. Also, the narrowing "or" -> mov.n
4339 requires special case code to ensure it only works when op1 == op2. */
4347 const struct string_pair narrowable
[] =
4350 { "addi", "addi.n" },
4351 { "addmi", "addi.n" },
4352 { "l32i", "l32i.n" },
4353 { "movi", "movi.n" },
4355 { "retw", "retw.n" },
4356 { "s32i", "s32i.n" },
4357 { "or", "mov.n" } /* special case only when op1 == op2 */
4360 const struct string_pair widenable
[] =
4363 { "addi", "addi.n" },
4364 { "addmi", "addi.n" },
4365 { "beqz", "beqz.n" },
4366 { "bnez", "bnez.n" },
4367 { "l32i", "l32i.n" },
4368 { "movi", "movi.n" },
4370 { "retw", "retw.n" },
4371 { "s32i", "s32i.n" },
4372 { "or", "mov.n" } /* special case only when op1 == op2 */
4376 /* Check if an instruction can be "narrowed", i.e., changed from a standard
4377 3-byte instruction to a 2-byte "density" instruction. If it is valid,
4378 return the instruction buffer holding the narrow instruction. Otherwise,
4379 return 0. The set of valid narrowing are specified by a string table
4380 but require some special case operand checks in some cases. */
4382 static xtensa_insnbuf
4383 can_narrow_instruction (xtensa_insnbuf slotbuf
,
4385 xtensa_opcode opcode
)
4387 xtensa_isa isa
= xtensa_default_isa
;
4388 xtensa_format o_fmt
;
4391 static xtensa_insnbuf o_insnbuf
= NULL
;
4392 static xtensa_insnbuf o_slotbuf
= NULL
;
4394 if (o_insnbuf
== NULL
)
4396 o_insnbuf
= xtensa_insnbuf_alloc (isa
);
4397 o_slotbuf
= xtensa_insnbuf_alloc (isa
);
4400 for (opi
= 0; opi
< (sizeof (narrowable
)/sizeof (struct string_pair
)); opi
++)
4402 bool is_or
= (strcmp ("or", narrowable
[opi
].wide
) == 0);
4404 if (opcode
== xtensa_opcode_lookup (isa
, narrowable
[opi
].wide
))
4406 uint32 value
, newval
;
4407 int i
, operand_count
, o_operand_count
;
4408 xtensa_opcode o_opcode
;
4410 /* Address does not matter in this case. We might need to
4411 fix it to handle branches/jumps. */
4412 bfd_vma self_address
= 0;
4414 o_opcode
= xtensa_opcode_lookup (isa
, narrowable
[opi
].narrow
);
4415 if (o_opcode
== XTENSA_UNDEFINED
)
4417 o_fmt
= get_single_format (o_opcode
);
4418 if (o_fmt
== XTENSA_UNDEFINED
)
4421 if (xtensa_format_length (isa
, fmt
) != 3
4422 || xtensa_format_length (isa
, o_fmt
) != 2)
4425 xtensa_format_encode (isa
, o_fmt
, o_insnbuf
);
4426 operand_count
= xtensa_opcode_num_operands (isa
, opcode
);
4427 o_operand_count
= xtensa_opcode_num_operands (isa
, o_opcode
);
4429 if (xtensa_opcode_encode (isa
, o_fmt
, 0, o_slotbuf
, o_opcode
) != 0)
4434 if (xtensa_opcode_num_operands (isa
, o_opcode
) != operand_count
)
4439 uint32 rawval0
, rawval1
, rawval2
;
4441 if (o_operand_count
+ 1 != operand_count
4442 || xtensa_operand_get_field (isa
, opcode
, 0,
4443 fmt
, 0, slotbuf
, &rawval0
) != 0
4444 || xtensa_operand_get_field (isa
, opcode
, 1,
4445 fmt
, 0, slotbuf
, &rawval1
) != 0
4446 || xtensa_operand_get_field (isa
, opcode
, 2,
4447 fmt
, 0, slotbuf
, &rawval2
) != 0
4448 || rawval1
!= rawval2
4449 || rawval0
== rawval1
/* it is a nop */)
4453 for (i
= 0; i
< o_operand_count
; ++i
)
4455 if (xtensa_operand_get_field (isa
, opcode
, i
, fmt
, 0,
4457 || xtensa_operand_decode (isa
, opcode
, i
, &value
))
4460 /* PC-relative branches need adjustment, but
4461 the PC-rel operand will always have a relocation. */
4463 if (xtensa_operand_do_reloc (isa
, o_opcode
, i
, &newval
,
4465 || xtensa_operand_encode (isa
, o_opcode
, i
, &newval
)
4466 || xtensa_operand_set_field (isa
, o_opcode
, i
, o_fmt
, 0,
4471 if (xtensa_format_set_slot (isa
, o_fmt
, 0, o_insnbuf
, o_slotbuf
))
4481 /* Attempt to narrow an instruction. If the narrowing is valid, perform
4482 the action in-place directly into the contents and return TRUE. Otherwise,
4483 the return value is FALSE and the contents are not modified. */
4486 narrow_instruction (bfd_byte
*contents
,
4487 bfd_size_type content_length
,
4488 bfd_size_type offset
)
4490 xtensa_opcode opcode
;
4491 bfd_size_type insn_len
;
4492 xtensa_isa isa
= xtensa_default_isa
;
4494 xtensa_insnbuf o_insnbuf
;
4496 static xtensa_insnbuf insnbuf
= NULL
;
4497 static xtensa_insnbuf slotbuf
= NULL
;
4499 if (insnbuf
== NULL
)
4501 insnbuf
= xtensa_insnbuf_alloc (isa
);
4502 slotbuf
= xtensa_insnbuf_alloc (isa
);
4505 BFD_ASSERT (offset
< content_length
);
4507 if (content_length
< 2)
4510 /* We will hand-code a few of these for a little while.
4511 These have all been specified in the assembler aleady. */
4512 xtensa_insnbuf_from_chars (isa
, insnbuf
, &contents
[offset
],
4513 content_length
- offset
);
4514 fmt
= xtensa_format_decode (isa
, insnbuf
);
4515 if (xtensa_format_num_slots (isa
, fmt
) != 1)
4518 if (xtensa_format_get_slot (isa
, fmt
, 0, insnbuf
, slotbuf
) != 0)
4521 opcode
= xtensa_opcode_decode (isa
, fmt
, 0, slotbuf
);
4522 if (opcode
== XTENSA_UNDEFINED
)
4524 insn_len
= xtensa_format_length (isa
, fmt
);
4525 if (insn_len
> content_length
)
4528 o_insnbuf
= can_narrow_instruction (slotbuf
, fmt
, opcode
);
4531 xtensa_insnbuf_to_chars (isa
, o_insnbuf
, contents
+ offset
,
4532 content_length
- offset
);
4540 /* Check if an instruction can be "widened", i.e., changed from a 2-byte
4541 "density" instruction to a standard 3-byte instruction. If it is valid,
4542 return the instruction buffer holding the wide instruction. Otherwise,
4543 return 0. The set of valid widenings are specified by a string table
4544 but require some special case operand checks in some cases. */
4546 static xtensa_insnbuf
4547 can_widen_instruction (xtensa_insnbuf slotbuf
,
4549 xtensa_opcode opcode
)
4551 xtensa_isa isa
= xtensa_default_isa
;
4552 xtensa_format o_fmt
;
4555 static xtensa_insnbuf o_insnbuf
= NULL
;
4556 static xtensa_insnbuf o_slotbuf
= NULL
;
4558 if (o_insnbuf
== NULL
)
4560 o_insnbuf
= xtensa_insnbuf_alloc (isa
);
4561 o_slotbuf
= xtensa_insnbuf_alloc (isa
);
4564 for (opi
= 0; opi
< (sizeof (widenable
)/sizeof (struct string_pair
)); opi
++)
4566 bool is_or
= (strcmp ("or", widenable
[opi
].wide
) == 0);
4567 bool is_branch
= (strcmp ("beqz", widenable
[opi
].wide
) == 0
4568 || strcmp ("bnez", widenable
[opi
].wide
) == 0);
4570 if (opcode
== xtensa_opcode_lookup (isa
, widenable
[opi
].narrow
))
4572 uint32 value
, newval
;
4573 int i
, operand_count
, o_operand_count
, check_operand_count
;
4574 xtensa_opcode o_opcode
;
4576 /* Address does not matter in this case. We might need to fix it
4577 to handle branches/jumps. */
4578 bfd_vma self_address
= 0;
4580 o_opcode
= xtensa_opcode_lookup (isa
, widenable
[opi
].wide
);
4581 if (o_opcode
== XTENSA_UNDEFINED
)
4583 o_fmt
= get_single_format (o_opcode
);
4584 if (o_fmt
== XTENSA_UNDEFINED
)
4587 if (xtensa_format_length (isa
, fmt
) != 2
4588 || xtensa_format_length (isa
, o_fmt
) != 3)
4591 xtensa_format_encode (isa
, o_fmt
, o_insnbuf
);
4592 operand_count
= xtensa_opcode_num_operands (isa
, opcode
);
4593 o_operand_count
= xtensa_opcode_num_operands (isa
, o_opcode
);
4594 check_operand_count
= o_operand_count
;
4596 if (xtensa_opcode_encode (isa
, o_fmt
, 0, o_slotbuf
, o_opcode
) != 0)
4601 if (xtensa_opcode_num_operands (isa
, o_opcode
) != operand_count
)
4606 uint32 rawval0
, rawval1
;
4608 if (o_operand_count
!= operand_count
+ 1
4609 || xtensa_operand_get_field (isa
, opcode
, 0,
4610 fmt
, 0, slotbuf
, &rawval0
) != 0
4611 || xtensa_operand_get_field (isa
, opcode
, 1,
4612 fmt
, 0, slotbuf
, &rawval1
) != 0
4613 || rawval0
== rawval1
/* it is a nop */)
4617 check_operand_count
--;
4619 for (i
= 0; i
< check_operand_count
; i
++)
4622 if (is_or
&& i
== o_operand_count
- 1)
4624 if (xtensa_operand_get_field (isa
, opcode
, new_i
, fmt
, 0,
4626 || xtensa_operand_decode (isa
, opcode
, new_i
, &value
))
4629 /* PC-relative branches need adjustment, but
4630 the PC-rel operand will always have a relocation. */
4632 if (xtensa_operand_do_reloc (isa
, o_opcode
, i
, &newval
,
4634 || xtensa_operand_encode (isa
, o_opcode
, i
, &newval
)
4635 || xtensa_operand_set_field (isa
, o_opcode
, i
, o_fmt
, 0,
4640 if (xtensa_format_set_slot (isa
, o_fmt
, 0, o_insnbuf
, o_slotbuf
))
4650 /* Attempt to widen an instruction. If the widening is valid, perform
4651 the action in-place directly into the contents and return TRUE. Otherwise,
4652 the return value is FALSE and the contents are not modified. */
4655 widen_instruction (bfd_byte
*contents
,
4656 bfd_size_type content_length
,
4657 bfd_size_type offset
)
4659 xtensa_opcode opcode
;
4660 bfd_size_type insn_len
;
4661 xtensa_isa isa
= xtensa_default_isa
;
4663 xtensa_insnbuf o_insnbuf
;
4665 static xtensa_insnbuf insnbuf
= NULL
;
4666 static xtensa_insnbuf slotbuf
= NULL
;
4668 if (insnbuf
== NULL
)
4670 insnbuf
= xtensa_insnbuf_alloc (isa
);
4671 slotbuf
= xtensa_insnbuf_alloc (isa
);
4674 BFD_ASSERT (offset
< content_length
);
4676 if (content_length
< 2)
4679 /* We will hand-code a few of these for a little while.
4680 These have all been specified in the assembler aleady. */
4681 xtensa_insnbuf_from_chars (isa
, insnbuf
, &contents
[offset
],
4682 content_length
- offset
);
4683 fmt
= xtensa_format_decode (isa
, insnbuf
);
4684 if (xtensa_format_num_slots (isa
, fmt
) != 1)
4687 if (xtensa_format_get_slot (isa
, fmt
, 0, insnbuf
, slotbuf
) != 0)
4690 opcode
= xtensa_opcode_decode (isa
, fmt
, 0, slotbuf
);
4691 if (opcode
== XTENSA_UNDEFINED
)
4693 insn_len
= xtensa_format_length (isa
, fmt
);
4694 if (insn_len
> content_length
)
4697 o_insnbuf
= can_widen_instruction (slotbuf
, fmt
, opcode
);
4700 xtensa_insnbuf_to_chars (isa
, o_insnbuf
, contents
+ offset
,
4701 content_length
- offset
);
4708 /* Code for transforming CALLs at link-time. */
4710 static bfd_reloc_status_type
4711 elf_xtensa_do_asm_simplify (bfd_byte
*contents
,
4713 bfd_vma content_length
,
4714 char **error_message
)
4716 static xtensa_insnbuf insnbuf
= NULL
;
4717 static xtensa_insnbuf slotbuf
= NULL
;
4718 xtensa_format core_format
= XTENSA_UNDEFINED
;
4719 xtensa_opcode opcode
;
4720 xtensa_opcode direct_call_opcode
;
4721 xtensa_isa isa
= xtensa_default_isa
;
4722 bfd_byte
*chbuf
= contents
+ address
;
4725 if (insnbuf
== NULL
)
4727 insnbuf
= xtensa_insnbuf_alloc (isa
);
4728 slotbuf
= xtensa_insnbuf_alloc (isa
);
4731 if (content_length
< address
)
4733 *error_message
= _("attempt to convert L32R/CALLX to CALL failed");
4734 return bfd_reloc_other
;
4737 opcode
= get_expanded_call_opcode (chbuf
, content_length
- address
, 0);
4738 direct_call_opcode
= swap_callx_for_call_opcode (opcode
);
4739 if (direct_call_opcode
== XTENSA_UNDEFINED
)
4741 *error_message
= _("attempt to convert L32R/CALLX to CALL failed");
4742 return bfd_reloc_other
;
4745 /* Assemble a NOP ("or a1, a1, a1") into the 0 byte offset. */
4746 core_format
= xtensa_format_lookup (isa
, "x24");
4747 opcode
= xtensa_opcode_lookup (isa
, "or");
4748 xtensa_opcode_encode (isa
, core_format
, 0, slotbuf
, opcode
);
4749 for (opn
= 0; opn
< 3; opn
++)
4752 xtensa_operand_encode (isa
, opcode
, opn
, ®no
);
4753 xtensa_operand_set_field (isa
, opcode
, opn
, core_format
, 0,
4756 xtensa_format_encode (isa
, core_format
, insnbuf
);
4757 xtensa_format_set_slot (isa
, core_format
, 0, insnbuf
, slotbuf
);
4758 xtensa_insnbuf_to_chars (isa
, insnbuf
, chbuf
, content_length
- address
);
4760 /* Assemble a CALL ("callN 0") into the 3 byte offset. */
4761 xtensa_opcode_encode (isa
, core_format
, 0, slotbuf
, direct_call_opcode
);
4762 xtensa_operand_set_field (isa
, opcode
, 0, core_format
, 0, slotbuf
, 0);
4764 xtensa_format_encode (isa
, core_format
, insnbuf
);
4765 xtensa_format_set_slot (isa
, core_format
, 0, insnbuf
, slotbuf
);
4766 xtensa_insnbuf_to_chars (isa
, insnbuf
, chbuf
+ 3,
4767 content_length
- address
- 3);
4769 return bfd_reloc_ok
;
4773 static bfd_reloc_status_type
4774 contract_asm_expansion (bfd_byte
*contents
,
4775 bfd_vma content_length
,
4776 Elf_Internal_Rela
*irel
,
4777 char **error_message
)
4779 bfd_reloc_status_type retval
=
4780 elf_xtensa_do_asm_simplify (contents
, irel
->r_offset
, content_length
,
4783 if (retval
!= bfd_reloc_ok
)
4784 return bfd_reloc_dangerous
;
4786 /* Update the irel->r_offset field so that the right immediate and
4787 the right instruction are modified during the relocation. */
4788 irel
->r_offset
+= 3;
4789 irel
->r_info
= ELF32_R_INFO (ELF32_R_SYM (irel
->r_info
), R_XTENSA_SLOT0_OP
);
4790 return bfd_reloc_ok
;
4794 static xtensa_opcode
4795 swap_callx_for_call_opcode (xtensa_opcode opcode
)
4797 init_call_opcodes ();
4799 if (opcode
== callx0_op
) return call0_op
;
4800 if (opcode
== callx4_op
) return call4_op
;
4801 if (opcode
== callx8_op
) return call8_op
;
4802 if (opcode
== callx12_op
) return call12_op
;
4804 /* Return XTENSA_UNDEFINED if the opcode is not an indirect call. */
4805 return XTENSA_UNDEFINED
;
4809 /* Check if "buf" is pointing to a "L32R aN; CALLX aN" or "CONST16 aN;
4810 CONST16 aN; CALLX aN" sequence, and if so, return the CALLX opcode.
4811 If not, return XTENSA_UNDEFINED. */
4813 #define L32R_TARGET_REG_OPERAND 0
4814 #define CONST16_TARGET_REG_OPERAND 0
4815 #define CALLN_SOURCE_OPERAND 0
4817 static xtensa_opcode
4818 get_expanded_call_opcode (bfd_byte
*buf
, int bufsize
, bool *p_uses_l32r
)
4820 static xtensa_insnbuf insnbuf
= NULL
;
4821 static xtensa_insnbuf slotbuf
= NULL
;
4823 xtensa_opcode opcode
;
4824 xtensa_isa isa
= xtensa_default_isa
;
4825 uint32 regno
, const16_regno
, call_regno
;
4828 if (insnbuf
== NULL
)
4830 insnbuf
= xtensa_insnbuf_alloc (isa
);
4831 slotbuf
= xtensa_insnbuf_alloc (isa
);
4834 xtensa_insnbuf_from_chars (isa
, insnbuf
, buf
, bufsize
);
4835 fmt
= xtensa_format_decode (isa
, insnbuf
);
4836 if (fmt
== XTENSA_UNDEFINED
4837 || xtensa_format_get_slot (isa
, fmt
, 0, insnbuf
, slotbuf
))
4838 return XTENSA_UNDEFINED
;
4840 opcode
= xtensa_opcode_decode (isa
, fmt
, 0, slotbuf
);
4841 if (opcode
== XTENSA_UNDEFINED
)
4842 return XTENSA_UNDEFINED
;
4844 if (opcode
== get_l32r_opcode ())
4847 *p_uses_l32r
= true;
4848 if (xtensa_operand_get_field (isa
, opcode
, L32R_TARGET_REG_OPERAND
,
4849 fmt
, 0, slotbuf
, ®no
)
4850 || xtensa_operand_decode (isa
, opcode
, L32R_TARGET_REG_OPERAND
,
4852 return XTENSA_UNDEFINED
;
4854 else if (opcode
== get_const16_opcode ())
4857 *p_uses_l32r
= false;
4858 if (xtensa_operand_get_field (isa
, opcode
, CONST16_TARGET_REG_OPERAND
,
4859 fmt
, 0, slotbuf
, ®no
)
4860 || xtensa_operand_decode (isa
, opcode
, CONST16_TARGET_REG_OPERAND
,
4862 return XTENSA_UNDEFINED
;
4864 /* Check that the next instruction is also CONST16. */
4865 offset
+= xtensa_format_length (isa
, fmt
);
4866 xtensa_insnbuf_from_chars (isa
, insnbuf
, buf
+ offset
, bufsize
- offset
);
4867 fmt
= xtensa_format_decode (isa
, insnbuf
);
4868 if (fmt
== XTENSA_UNDEFINED
4869 || xtensa_format_get_slot (isa
, fmt
, 0, insnbuf
, slotbuf
))
4870 return XTENSA_UNDEFINED
;
4871 opcode
= xtensa_opcode_decode (isa
, fmt
, 0, slotbuf
);
4872 if (opcode
!= get_const16_opcode ())
4873 return XTENSA_UNDEFINED
;
4875 if (xtensa_operand_get_field (isa
, opcode
, CONST16_TARGET_REG_OPERAND
,
4876 fmt
, 0, slotbuf
, &const16_regno
)
4877 || xtensa_operand_decode (isa
, opcode
, CONST16_TARGET_REG_OPERAND
,
4879 || const16_regno
!= regno
)
4880 return XTENSA_UNDEFINED
;
4883 return XTENSA_UNDEFINED
;
4885 /* Next instruction should be an CALLXn with operand 0 == regno. */
4886 offset
+= xtensa_format_length (isa
, fmt
);
4887 xtensa_insnbuf_from_chars (isa
, insnbuf
, buf
+ offset
, bufsize
- offset
);
4888 fmt
= xtensa_format_decode (isa
, insnbuf
);
4889 if (fmt
== XTENSA_UNDEFINED
4890 || xtensa_format_get_slot (isa
, fmt
, 0, insnbuf
, slotbuf
))
4891 return XTENSA_UNDEFINED
;
4892 opcode
= xtensa_opcode_decode (isa
, fmt
, 0, slotbuf
);
4893 if (opcode
== XTENSA_UNDEFINED
4894 || !is_indirect_call_opcode (opcode
))
4895 return XTENSA_UNDEFINED
;
4897 if (xtensa_operand_get_field (isa
, opcode
, CALLN_SOURCE_OPERAND
,
4898 fmt
, 0, slotbuf
, &call_regno
)
4899 || xtensa_operand_decode (isa
, opcode
, CALLN_SOURCE_OPERAND
,
4901 return XTENSA_UNDEFINED
;
4903 if (call_regno
!= regno
)
4904 return XTENSA_UNDEFINED
;
4910 /* Data structures used during relaxation. */
4912 /* r_reloc: relocation values. */
4914 /* Through the relaxation process, we need to keep track of the values
4915 that will result from evaluating relocations. The standard ELF
4916 relocation structure is not sufficient for this purpose because we're
4917 operating on multiple input files at once, so we need to know which
4918 input file a relocation refers to. The r_reloc structure thus
4919 records both the input file (bfd) and ELF relocation.
4921 For efficiency, an r_reloc also contains a "target_offset" field to
4922 cache the target-section-relative offset value that is represented by
4925 The r_reloc also contains a virtual offset that allows multiple
4926 inserted literals to be placed at the same "address" with
4927 different offsets. */
4929 typedef struct r_reloc_struct r_reloc
;
4931 struct r_reloc_struct
4934 Elf_Internal_Rela rela
;
4935 bfd_vma target_offset
;
4936 bfd_vma virtual_offset
;
4940 /* The r_reloc structure is included by value in literal_value, but not
4941 every literal_value has an associated relocation -- some are simple
4942 constants. In such cases, we set all the fields in the r_reloc
4943 struct to zero. The r_reloc_is_const function should be used to
4944 detect this case. */
4947 r_reloc_is_const (const r_reloc
*r_rel
)
4949 return (r_rel
->abfd
== NULL
);
4954 r_reloc_get_target_offset (const r_reloc
*r_rel
)
4956 bfd_vma target_offset
;
4957 unsigned long r_symndx
;
4959 BFD_ASSERT (!r_reloc_is_const (r_rel
));
4960 r_symndx
= ELF32_R_SYM (r_rel
->rela
.r_info
);
4961 target_offset
= get_elf_r_symndx_offset (r_rel
->abfd
, r_symndx
);
4962 return (target_offset
+ r_rel
->rela
.r_addend
);
4966 static struct elf_link_hash_entry
*
4967 r_reloc_get_hash_entry (const r_reloc
*r_rel
)
4969 unsigned long r_symndx
= ELF32_R_SYM (r_rel
->rela
.r_info
);
4970 return get_elf_r_symndx_hash_entry (r_rel
->abfd
, r_symndx
);
4975 r_reloc_get_section (const r_reloc
*r_rel
)
4977 unsigned long r_symndx
= ELF32_R_SYM (r_rel
->rela
.r_info
);
4978 return get_elf_r_symndx_section (r_rel
->abfd
, r_symndx
);
4983 r_reloc_is_defined (const r_reloc
*r_rel
)
4989 sec
= r_reloc_get_section (r_rel
);
4990 if (sec
== bfd_abs_section_ptr
4991 || sec
== bfd_com_section_ptr
4992 || sec
== bfd_und_section_ptr
)
4999 r_reloc_init (r_reloc
*r_rel
,
5001 Elf_Internal_Rela
*irel
,
5003 bfd_size_type content_length
)
5006 reloc_howto_type
*howto
;
5010 r_rel
->rela
= *irel
;
5012 r_rel
->target_offset
= r_reloc_get_target_offset (r_rel
);
5013 r_rel
->virtual_offset
= 0;
5014 r_type
= ELF32_R_TYPE (r_rel
->rela
.r_info
);
5015 howto
= &elf_howto_table
[r_type
];
5016 if (howto
->partial_inplace
)
5018 bfd_vma inplace_val
;
5019 BFD_ASSERT (r_rel
->rela
.r_offset
< content_length
);
5021 inplace_val
= bfd_get_32 (abfd
, &contents
[r_rel
->rela
.r_offset
]);
5022 r_rel
->target_offset
+= inplace_val
;
5026 memset (r_rel
, 0, sizeof (r_reloc
));
5033 print_r_reloc (FILE *fp
, const r_reloc
*r_rel
)
5035 if (r_reloc_is_defined (r_rel
))
5037 asection
*sec
= r_reloc_get_section (r_rel
);
5038 fprintf (fp
, " %s(%s + ", sec
->owner
->filename
, sec
->name
);
5040 else if (r_reloc_get_hash_entry (r_rel
))
5041 fprintf (fp
, " %s + ", r_reloc_get_hash_entry (r_rel
)->root
.root
.string
);
5043 fprintf (fp
, " ?? + ");
5045 fprintf (fp
, "%" PRIx64
, (uint64_t) r_rel
->target_offset
);
5046 if (r_rel
->virtual_offset
)
5047 fprintf (fp
, " + %" PRIx64
, (uint64_t) r_rel
->virtual_offset
);
5055 /* source_reloc: relocations that reference literals. */
5057 /* To determine whether literals can be coalesced, we need to first
5058 record all the relocations that reference the literals. The
5059 source_reloc structure below is used for this purpose. The
5060 source_reloc entries are kept in a per-literal-section array, sorted
5061 by offset within the literal section (i.e., target offset).
5063 The source_sec and r_rel.rela.r_offset fields identify the source of
5064 the relocation. The r_rel field records the relocation value, i.e.,
5065 the offset of the literal being referenced. The opnd field is needed
5066 to determine the range of the immediate field to which the relocation
5067 applies, so we can determine whether another literal with the same
5068 value is within range. The is_null field is true when the relocation
5069 is being removed (e.g., when an L32R is being removed due to a CALLX
5070 that is converted to a direct CALL). */
5072 typedef struct source_reloc_struct source_reloc
;
5074 struct source_reloc_struct
5076 asection
*source_sec
;
5078 xtensa_opcode opcode
;
5081 bool is_abs_literal
;
5086 init_source_reloc (source_reloc
*reloc
,
5087 asection
*source_sec
,
5088 const r_reloc
*r_rel
,
5089 xtensa_opcode opcode
,
5091 bool is_abs_literal
)
5093 reloc
->source_sec
= source_sec
;
5094 reloc
->r_rel
= *r_rel
;
5095 reloc
->opcode
= opcode
;
5097 reloc
->is_null
= false;
5098 reloc
->is_abs_literal
= is_abs_literal
;
5102 /* Find the source_reloc for a particular source offset and relocation
5103 type. Note that the array is sorted by _target_ offset, so this is
5104 just a linear search. */
5106 static source_reloc
*
5107 find_source_reloc (source_reloc
*src_relocs
,
5110 Elf_Internal_Rela
*irel
)
5114 for (i
= 0; i
< src_count
; i
++)
5116 if (src_relocs
[i
].source_sec
== sec
5117 && src_relocs
[i
].r_rel
.rela
.r_offset
== irel
->r_offset
5118 && (ELF32_R_TYPE (src_relocs
[i
].r_rel
.rela
.r_info
)
5119 == ELF32_R_TYPE (irel
->r_info
)))
5120 return &src_relocs
[i
];
5128 source_reloc_compare (const void *ap
, const void *bp
)
5130 const source_reloc
*a
= (const source_reloc
*) ap
;
5131 const source_reloc
*b
= (const source_reloc
*) bp
;
5133 if (a
->r_rel
.target_offset
!= b
->r_rel
.target_offset
)
5134 return (a
->r_rel
.target_offset
- b
->r_rel
.target_offset
);
5136 /* We don't need to sort on these criteria for correctness,
5137 but enforcing a more strict ordering prevents unstable qsort
5138 from behaving differently with different implementations.
5139 Without the code below we get correct but different results
5140 on Solaris 2.7 and 2.8. We would like to always produce the
5141 same results no matter the host. */
5143 if ((!a
->is_null
) - (!b
->is_null
))
5144 return ((!a
->is_null
) - (!b
->is_null
));
5145 return internal_reloc_compare (&a
->r_rel
.rela
, &b
->r_rel
.rela
);
5149 /* Literal values and value hash tables. */
5151 /* Literals with the same value can be coalesced. The literal_value
5152 structure records the value of a literal: the "r_rel" field holds the
5153 information from the relocation on the literal (if there is one) and
5154 the "value" field holds the contents of the literal word itself.
5156 The value_map structure records a literal value along with the
5157 location of a literal holding that value. The value_map hash table
5158 is indexed by the literal value, so that we can quickly check if a
5159 particular literal value has been seen before and is thus a candidate
5162 typedef struct literal_value_struct literal_value
;
5163 typedef struct value_map_struct value_map
;
5164 typedef struct value_map_hash_table_struct value_map_hash_table
;
5166 struct literal_value_struct
5169 unsigned long value
;
5170 bool is_abs_literal
;
5173 struct value_map_struct
5175 literal_value val
; /* The literal value. */
5176 r_reloc loc
; /* Location of the literal. */
5180 struct value_map_hash_table_struct
5182 unsigned bucket_count
;
5183 value_map
**buckets
;
5191 init_literal_value (literal_value
*lit
,
5192 const r_reloc
*r_rel
,
5193 unsigned long value
,
5194 bool is_abs_literal
)
5196 lit
->r_rel
= *r_rel
;
5198 lit
->is_abs_literal
= is_abs_literal
;
5203 literal_value_equal (const literal_value
*src1
,
5204 const literal_value
*src2
,
5205 bool final_static_link
)
5207 struct elf_link_hash_entry
*h1
, *h2
;
5209 if (r_reloc_is_const (&src1
->r_rel
) != r_reloc_is_const (&src2
->r_rel
))
5212 if (r_reloc_is_const (&src1
->r_rel
))
5213 return (src1
->value
== src2
->value
);
5215 if (ELF32_R_TYPE (src1
->r_rel
.rela
.r_info
)
5216 != ELF32_R_TYPE (src2
->r_rel
.rela
.r_info
))
5219 if (src1
->r_rel
.target_offset
!= src2
->r_rel
.target_offset
)
5222 if (src1
->r_rel
.virtual_offset
!= src2
->r_rel
.virtual_offset
)
5225 if (src1
->value
!= src2
->value
)
5228 /* Now check for the same section (if defined) or the same elf_hash
5229 (if undefined or weak). */
5230 h1
= r_reloc_get_hash_entry (&src1
->r_rel
);
5231 h2
= r_reloc_get_hash_entry (&src2
->r_rel
);
5233 /* Keep start_stop literals always unique to avoid dropping it due to them
5234 having late initialization.
5235 Now they are equal because initialized with zeroed values. */
5236 if (h2
&& h2
->start_stop
)
5239 if (r_reloc_is_defined (&src1
->r_rel
)
5240 && (final_static_link
5241 || ((!h1
|| h1
->root
.type
!= bfd_link_hash_defweak
)
5242 && (!h2
|| h2
->root
.type
!= bfd_link_hash_defweak
))))
5244 if (r_reloc_get_section (&src1
->r_rel
)
5245 != r_reloc_get_section (&src2
->r_rel
))
5250 /* Require that the hash entries (i.e., symbols) be identical. */
5251 if (h1
!= h2
|| h1
== 0)
5255 if (src1
->is_abs_literal
!= src2
->is_abs_literal
)
5262 /* Must be power of 2. */
5263 #define INITIAL_HASH_RELOC_BUCKET_COUNT 1024
5265 static value_map_hash_table
*
5266 value_map_hash_table_init (void)
5268 value_map_hash_table
*values
;
5270 values
= (value_map_hash_table
*)
5271 bfd_zmalloc (sizeof (value_map_hash_table
));
5272 values
->bucket_count
= INITIAL_HASH_RELOC_BUCKET_COUNT
;
5274 values
->buckets
= (value_map
**)
5275 bfd_zmalloc (sizeof (value_map
*) * values
->bucket_count
);
5276 if (values
->buckets
== NULL
)
5281 values
->has_last_loc
= false;
5288 value_map_hash_table_delete (value_map_hash_table
*table
)
5290 free (table
->buckets
);
5296 hash_bfd_vma (bfd_vma val
)
5298 return (val
>> 2) + (val
>> 10);
5303 literal_value_hash (const literal_value
*src
)
5307 hash_val
= hash_bfd_vma (src
->value
);
5308 if (!r_reloc_is_const (&src
->r_rel
))
5312 hash_val
+= hash_bfd_vma (src
->is_abs_literal
* 1000);
5313 hash_val
+= hash_bfd_vma (src
->r_rel
.target_offset
);
5314 hash_val
+= hash_bfd_vma (src
->r_rel
.virtual_offset
);
5316 /* Now check for the same section and the same elf_hash. */
5317 if (r_reloc_is_defined (&src
->r_rel
))
5318 sec_or_hash
= r_reloc_get_section (&src
->r_rel
);
5320 sec_or_hash
= r_reloc_get_hash_entry (&src
->r_rel
);
5321 hash_val
+= hash_bfd_vma ((bfd_vma
) (size_t) sec_or_hash
);
5327 /* Check if the specified literal_value has been seen before. */
5330 value_map_get_cached_value (value_map_hash_table
*map
,
5331 const literal_value
*val
,
5332 bool final_static_link
)
5338 idx
= literal_value_hash (val
);
5339 idx
= idx
& (map
->bucket_count
- 1);
5340 bucket
= map
->buckets
[idx
];
5341 for (map_e
= bucket
; map_e
; map_e
= map_e
->next
)
5343 if (literal_value_equal (&map_e
->val
, val
, final_static_link
))
5350 /* Record a new literal value. It is illegal to call this if VALUE
5351 already has an entry here. */
5354 add_value_map (value_map_hash_table
*map
,
5355 const literal_value
*val
,
5357 bool final_static_link
)
5359 value_map
**bucket_p
;
5362 value_map
*val_e
= (value_map
*) bfd_zmalloc (sizeof (value_map
));
5365 bfd_set_error (bfd_error_no_memory
);
5369 BFD_ASSERT (!value_map_get_cached_value (map
, val
, final_static_link
));
5373 idx
= literal_value_hash (val
);
5374 idx
= idx
& (map
->bucket_count
- 1);
5375 bucket_p
= &map
->buckets
[idx
];
5377 val_e
->next
= *bucket_p
;
5380 /* FIXME: Consider resizing the hash table if we get too many entries. */
5386 /* Lists of text actions (ta_) for narrowing, widening, longcall
5387 conversion, space fill, code & literal removal, etc. */
5389 /* The following text actions are generated:
5391 "ta_remove_insn" remove an instruction or instructions
5392 "ta_remove_longcall" convert longcall to call
5393 "ta_convert_longcall" convert longcall to nop/call
5394 "ta_narrow_insn" narrow a wide instruction
5395 "ta_widen" widen a narrow instruction
5396 "ta_fill" add fill or remove fill
5397 removed < 0 is a fill; branches to the fill address will be
5398 changed to address + fill size (e.g., address - removed)
5399 removed >= 0 branches to the fill address will stay unchanged
5400 "ta_remove_literal" remove a literal; this action is
5401 indicated when a literal is removed
5403 "ta_add_literal" insert a new literal; this action is
5404 indicated when a literal has been moved.
5405 It may use a virtual_offset because
5406 multiple literals can be placed at the
5409 For each of these text actions, we also record the number of bytes
5410 removed by performing the text action. In the case of a "ta_widen"
5411 or a "ta_fill" that adds space, the removed_bytes will be negative. */
5413 typedef struct text_action_struct text_action
;
5414 typedef struct text_action_list_struct text_action_list
;
5415 typedef enum text_action_enum_t text_action_t
;
5417 enum text_action_enum_t
5420 ta_remove_insn
, /* removed = -size */
5421 ta_remove_longcall
, /* removed = -size */
5422 ta_convert_longcall
, /* removed = 0 */
5423 ta_narrow_insn
, /* removed = -1 */
5424 ta_widen_insn
, /* removed = +1 */
5425 ta_fill
, /* removed = +size */
5431 /* Structure for a text action record. */
5432 struct text_action_struct
5434 text_action_t action
;
5435 asection
*sec
; /* Optional */
5437 bfd_vma virtual_offset
; /* Zero except for adding literals. */
5439 literal_value value
; /* Only valid when adding literals. */
5442 struct removal_by_action_entry_struct
5447 int eq_removed_before_fill
;
5449 typedef struct removal_by_action_entry_struct removal_by_action_entry
;
5451 struct removal_by_action_map_struct
5454 removal_by_action_entry
*entry
;
5456 typedef struct removal_by_action_map_struct removal_by_action_map
;
5459 /* List of all of the actions taken on a text section. */
5460 struct text_action_list_struct
5464 removal_by_action_map map
;
5468 static text_action
*
5469 find_fill_action (text_action_list
*l
, asection
*sec
, bfd_vma offset
)
5473 /* It is not necessary to fill at the end of a section. */
5474 if (sec
->size
== offset
)
5480 splay_tree_node node
= splay_tree_lookup (l
->tree
, (splay_tree_key
)&a
);
5482 return (text_action
*)node
->value
;
5488 compute_removed_action_diff (const text_action
*ta
,
5492 int removable_space
)
5495 int current_removed
= 0;
5498 current_removed
= ta
->removed_bytes
;
5500 BFD_ASSERT (ta
== NULL
|| ta
->offset
== offset
);
5501 BFD_ASSERT (ta
== NULL
|| ta
->action
== ta_fill
);
5503 /* It is not necessary to fill at the end of a section. Clean this up. */
5504 if (sec
->size
== offset
)
5505 new_removed
= removable_space
- 0;
5509 int added
= -removed
- current_removed
;
5510 /* Ignore multiples of the section alignment. */
5511 added
= ((1 << sec
->alignment_power
) - 1) & added
;
5512 new_removed
= (-added
);
5514 /* Modify for removable. */
5515 space
= removable_space
- new_removed
;
5516 new_removed
= (removable_space
5517 - (((1 << sec
->alignment_power
) - 1) & space
));
5519 return (new_removed
- current_removed
);
5524 adjust_fill_action (text_action
*ta
, int fill_diff
)
5526 ta
->removed_bytes
+= fill_diff
;
5531 text_action_compare (splay_tree_key a
, splay_tree_key b
)
5533 text_action
*pa
= (text_action
*)a
;
5534 text_action
*pb
= (text_action
*)b
;
5535 static const int action_priority
[] =
5539 [ta_convert_longcall
] = 2,
5540 [ta_narrow_insn
] = 3,
5541 [ta_remove_insn
] = 4,
5542 [ta_remove_longcall
] = 5,
5543 [ta_remove_literal
] = 6,
5544 [ta_widen_insn
] = 7,
5545 [ta_add_literal
] = 8,
5548 if (pa
->offset
== pb
->offset
)
5550 if (pa
->action
== pb
->action
)
5552 return action_priority
[pa
->action
] - action_priority
[pb
->action
];
5555 return pa
->offset
< pb
->offset
? -1 : 1;
5558 static text_action
*
5559 action_first (text_action_list
*action_list
)
5561 splay_tree_node node
= splay_tree_min (action_list
->tree
);
5562 return node
? (text_action
*)node
->value
: NULL
;
5565 static text_action
*
5566 action_next (text_action_list
*action_list
, text_action
*action
)
5568 splay_tree_node node
= splay_tree_successor (action_list
->tree
,
5569 (splay_tree_key
)action
);
5570 return node
? (text_action
*)node
->value
: NULL
;
5573 /* Add a modification action to the text. For the case of adding or
5574 removing space, modify any current fill and assume that
5575 "unreachable_space" bytes can be freely contracted. Note that a
5576 negative removed value is a fill. */
5579 text_action_add (text_action_list
*l
,
5580 text_action_t action
,
5588 /* It is not necessary to fill at the end of a section. */
5589 if (action
== ta_fill
&& sec
->size
== offset
)
5592 /* It is not necessary to fill 0 bytes. */
5593 if (action
== ta_fill
&& removed
== 0)
5599 if (action
== ta_fill
)
5601 splay_tree_node node
= splay_tree_lookup (l
->tree
, (splay_tree_key
)&a
);
5605 ta
= (text_action
*)node
->value
;
5606 ta
->removed_bytes
+= removed
;
5611 BFD_ASSERT (splay_tree_lookup (l
->tree
, (splay_tree_key
)&a
) == NULL
);
5613 ta
= (text_action
*) bfd_zmalloc (sizeof (text_action
));
5614 ta
->action
= action
;
5616 ta
->offset
= offset
;
5617 ta
->removed_bytes
= removed
;
5618 splay_tree_insert (l
->tree
, (splay_tree_key
)ta
, (splay_tree_value
)ta
);
5624 text_action_add_literal (text_action_list
*l
,
5625 text_action_t action
,
5627 const literal_value
*value
,
5631 asection
*sec
= r_reloc_get_section (loc
);
5632 bfd_vma offset
= loc
->target_offset
;
5633 bfd_vma virtual_offset
= loc
->virtual_offset
;
5635 BFD_ASSERT (action
== ta_add_literal
);
5637 /* Create a new record and fill it up. */
5638 ta
= (text_action
*) bfd_zmalloc (sizeof (text_action
));
5639 ta
->action
= action
;
5641 ta
->offset
= offset
;
5642 ta
->virtual_offset
= virtual_offset
;
5644 ta
->removed_bytes
= removed
;
5646 BFD_ASSERT (splay_tree_lookup (l
->tree
, (splay_tree_key
)ta
) == NULL
);
5647 splay_tree_insert (l
->tree
, (splay_tree_key
)ta
, (splay_tree_value
)ta
);
5652 /* Find the total offset adjustment for the relaxations specified by
5653 text_actions, beginning from a particular starting action. This is
5654 typically used from offset_with_removed_text to search an entire list of
5655 actions, but it may also be called directly when adjusting adjacent offsets
5656 so that each search may begin where the previous one left off. */
5659 removed_by_actions (text_action_list
*action_list
,
5660 text_action
**p_start_action
,
5667 r
= *p_start_action
;
5670 splay_tree_node node
= splay_tree_lookup (action_list
->tree
,
5672 BFD_ASSERT (node
!= NULL
&& r
== (text_action
*)node
->value
);
5677 if (r
->offset
> offset
)
5680 if (r
->offset
== offset
5681 && (before_fill
|| r
->action
!= ta_fill
|| r
->removed_bytes
>= 0))
5684 removed
+= r
->removed_bytes
;
5686 r
= action_next (action_list
, r
);
5689 *p_start_action
= r
;
5695 offset_with_removed_text (text_action_list
*action_list
, bfd_vma offset
)
5697 text_action
*r
= action_first (action_list
);
5699 return offset
- removed_by_actions (action_list
, &r
, offset
, false);
5704 action_list_count (text_action_list
*action_list
)
5706 return action_list
->count
;
5709 typedef struct map_action_fn_context_struct map_action_fn_context
;
5710 struct map_action_fn_context_struct
5713 removal_by_action_map map
;
5718 map_action_fn (splay_tree_node node
, void *p
)
5720 map_action_fn_context
*ctx
= p
;
5721 text_action
*r
= (text_action
*)node
->value
;
5722 removal_by_action_entry
*ientry
= ctx
->map
.entry
+ ctx
->map
.n_entries
;
5724 if (ctx
->map
.n_entries
&& (ientry
- 1)->offset
== r
->offset
)
5730 ++ctx
->map
.n_entries
;
5731 ctx
->eq_complete
= false;
5732 ientry
->offset
= r
->offset
;
5733 ientry
->eq_removed_before_fill
= ctx
->removed
;
5736 if (!ctx
->eq_complete
)
5738 if (r
->action
!= ta_fill
|| r
->removed_bytes
>= 0)
5740 ientry
->eq_removed
= ctx
->removed
;
5741 ctx
->eq_complete
= true;
5744 ientry
->eq_removed
= ctx
->removed
+ r
->removed_bytes
;
5747 ctx
->removed
+= r
->removed_bytes
;
5748 ientry
->removed
= ctx
->removed
;
5753 map_removal_by_action (text_action_list
*action_list
)
5755 map_action_fn_context ctx
;
5758 ctx
.map
.n_entries
= 0;
5759 ctx
.map
.entry
= bfd_malloc (action_list_count (action_list
) *
5760 sizeof (removal_by_action_entry
));
5761 ctx
.eq_complete
= false;
5763 splay_tree_foreach (action_list
->tree
, map_action_fn
, &ctx
);
5764 action_list
->map
= ctx
.map
;
5768 removed_by_actions_map (text_action_list
*action_list
, bfd_vma offset
,
5773 if (!action_list
->map
.entry
)
5774 map_removal_by_action (action_list
);
5776 if (!action_list
->map
.n_entries
)
5780 b
= action_list
->map
.n_entries
;
5784 unsigned c
= (a
+ b
) / 2;
5786 if (action_list
->map
.entry
[c
].offset
<= offset
)
5792 if (action_list
->map
.entry
[a
].offset
< offset
)
5794 return action_list
->map
.entry
[a
].removed
;
5796 else if (action_list
->map
.entry
[a
].offset
== offset
)
5798 return before_fill
?
5799 action_list
->map
.entry
[a
].eq_removed_before_fill
:
5800 action_list
->map
.entry
[a
].eq_removed
;
5809 offset_with_removed_text_map (text_action_list
*action_list
, bfd_vma offset
)
5811 int removed
= removed_by_actions_map (action_list
, offset
, false);
5812 return offset
- removed
;
5816 /* The find_insn_action routine will only find non-fill actions. */
5818 static text_action
*
5819 find_insn_action (text_action_list
*action_list
, bfd_vma offset
)
5821 static const text_action_t action
[] =
5823 ta_convert_longcall
,
5833 for (i
= 0; i
< sizeof (action
) / sizeof (*action
); ++i
)
5835 splay_tree_node node
;
5837 a
.action
= action
[i
];
5838 node
= splay_tree_lookup (action_list
->tree
, (splay_tree_key
)&a
);
5840 return (text_action
*)node
->value
;
5849 print_action (FILE *fp
, text_action
*r
)
5851 const char *t
= "unknown";
5854 case ta_remove_insn
:
5855 t
= "remove_insn"; break;
5856 case ta_remove_longcall
:
5857 t
= "remove_longcall"; break;
5858 case ta_convert_longcall
:
5859 t
= "convert_longcall"; break;
5860 case ta_narrow_insn
:
5861 t
= "narrow_insn"; break;
5863 t
= "widen_insn"; break;
5868 case ta_remove_literal
:
5869 t
= "remove_literal"; break;
5870 case ta_add_literal
:
5871 t
= "add_literal"; break;
5874 fprintf (fp
, "%s: %s[0x%lx] \"%s\" %d\n",
5875 r
->sec
->owner
->filename
,
5876 r
->sec
->name
, (unsigned long) r
->offset
, t
, r
->removed_bytes
);
5880 print_action_list_fn (splay_tree_node node
, void *p
)
5882 text_action
*r
= (text_action
*)node
->value
;
5884 print_action (p
, r
);
5889 print_action_list (FILE *fp
, text_action_list
*action_list
)
5891 fprintf (fp
, "Text Action\n");
5892 splay_tree_foreach (action_list
->tree
, print_action_list_fn
, fp
);
5898 /* Lists of literals being coalesced or removed. */
5900 /* In the usual case, the literal identified by "from" is being
5901 coalesced with another literal identified by "to". If the literal is
5902 unused and is being removed altogether, "to.abfd" will be NULL.
5903 The removed_literal entries are kept on a per-section list, sorted
5904 by the "from" offset field. */
5906 typedef struct removed_literal_struct removed_literal
;
5907 typedef struct removed_literal_map_entry_struct removed_literal_map_entry
;
5908 typedef struct removed_literal_list_struct removed_literal_list
;
5910 struct removed_literal_struct
5914 removed_literal
*next
;
5917 struct removed_literal_map_entry_struct
5920 removed_literal
*literal
;
5923 struct removed_literal_list_struct
5925 removed_literal
*head
;
5926 removed_literal
*tail
;
5929 removed_literal_map_entry
*map
;
5933 /* Record that the literal at "from" is being removed. If "to" is not
5934 NULL, the "from" literal is being coalesced with the "to" literal. */
5937 add_removed_literal (removed_literal_list
*removed_list
,
5938 const r_reloc
*from
,
5941 removed_literal
*r
, *new_r
, *next_r
;
5943 new_r
= (removed_literal
*) bfd_zmalloc (sizeof (removed_literal
));
5945 new_r
->from
= *from
;
5949 new_r
->to
.abfd
= NULL
;
5952 r
= removed_list
->head
;
5955 removed_list
->head
= new_r
;
5956 removed_list
->tail
= new_r
;
5958 /* Special check for common case of append. */
5959 else if (removed_list
->tail
->from
.target_offset
< from
->target_offset
)
5961 removed_list
->tail
->next
= new_r
;
5962 removed_list
->tail
= new_r
;
5966 while (r
->from
.target_offset
< from
->target_offset
&& r
->next
)
5972 new_r
->next
= next_r
;
5974 removed_list
->tail
= new_r
;
5979 map_removed_literal (removed_literal_list
*removed_list
)
5983 removed_literal_map_entry
*map
= NULL
;
5984 removed_literal
*r
= removed_list
->head
;
5986 for (i
= 0; r
; ++i
, r
= r
->next
)
5990 n_map
= (n_map
* 2) + 2;
5991 map
= bfd_realloc (map
, n_map
* sizeof (*map
));
5993 map
[i
].addr
= r
->from
.target_offset
;
5996 removed_list
->map
= map
;
5997 removed_list
->n_map
= i
;
6001 removed_literal_compare (const void *a
, const void *b
)
6003 const bfd_vma
*key
= a
;
6004 const removed_literal_map_entry
*memb
= b
;
6006 if (*key
== memb
->addr
)
6009 return *key
< memb
->addr
? -1 : 1;
6012 /* Check if the list of removed literals contains an entry for the
6013 given address. Return the entry if found. */
6015 static removed_literal
*
6016 find_removed_literal (removed_literal_list
*removed_list
, bfd_vma addr
)
6018 removed_literal_map_entry
*p
;
6019 removed_literal
*r
= NULL
;
6021 if (removed_list
->map
== NULL
)
6022 map_removed_literal (removed_list
);
6024 if (removed_list
->map
!= NULL
)
6026 p
= bsearch (&addr
, removed_list
->map
, removed_list
->n_map
,
6027 sizeof (*removed_list
->map
), removed_literal_compare
);
6030 while (p
!= removed_list
->map
&& (p
- 1)->addr
== addr
)
6042 print_removed_literals (FILE *fp
, removed_literal_list
*removed_list
)
6045 r
= removed_list
->head
;
6047 fprintf (fp
, "Removed Literals\n");
6048 for (; r
!= NULL
; r
= r
->next
)
6050 print_r_reloc (fp
, &r
->from
);
6051 fprintf (fp
, " => ");
6052 if (r
->to
.abfd
== NULL
)
6053 fprintf (fp
, "REMOVED");
6055 print_r_reloc (fp
, &r
->to
);
6063 /* Per-section data for relaxation. */
6065 typedef struct reloc_bfd_fix_struct reloc_bfd_fix
;
6067 struct xtensa_relax_info_struct
6069 bool is_relaxable_literal_section
;
6070 bool is_relaxable_asm_section
;
6071 int visited
; /* Number of times visited. */
6073 source_reloc
*src_relocs
; /* Array[src_count]. */
6075 int src_next
; /* Next src_relocs entry to assign. */
6077 removed_literal_list removed_list
;
6078 text_action_list action_list
;
6080 reloc_bfd_fix
*fix_list
;
6081 reloc_bfd_fix
*fix_array
;
6082 unsigned fix_array_count
;
6084 /* Support for expanding the reloc array that is stored
6085 in the section structure. If the relocations have been
6086 reallocated, the newly allocated relocations will be referenced
6087 here along with the actual size allocated. The relocation
6088 count will always be found in the section structure. */
6089 Elf_Internal_Rela
*allocated_relocs
;
6090 unsigned relocs_count
;
6091 unsigned allocated_relocs_count
;
6094 struct elf_xtensa_section_data
6096 struct bfd_elf_section_data elf
;
6097 xtensa_relax_info relax_info
;
6102 elf_xtensa_new_section_hook (bfd
*abfd
, asection
*sec
)
6104 struct elf_xtensa_section_data
*sdata
;
6106 sdata
= bfd_zalloc (abfd
, sizeof (*sdata
));
6109 sec
->used_by_bfd
= sdata
;
6111 return _bfd_elf_new_section_hook (abfd
, sec
);
6115 static xtensa_relax_info
*
6116 get_xtensa_relax_info (asection
*sec
)
6118 struct elf_xtensa_section_data
*section_data
;
6120 /* No info available if no section or if it is an output section. */
6121 if (!sec
|| sec
== sec
->output_section
)
6124 section_data
= (struct elf_xtensa_section_data
*) elf_section_data (sec
);
6125 return §ion_data
->relax_info
;
6130 init_xtensa_relax_info (asection
*sec
)
6132 xtensa_relax_info
*relax_info
= get_xtensa_relax_info (sec
);
6134 relax_info
->is_relaxable_literal_section
= false;
6135 relax_info
->is_relaxable_asm_section
= false;
6136 relax_info
->visited
= 0;
6138 relax_info
->src_relocs
= NULL
;
6139 relax_info
->src_count
= 0;
6140 relax_info
->src_next
= 0;
6142 relax_info
->removed_list
.head
= NULL
;
6143 relax_info
->removed_list
.tail
= NULL
;
6145 relax_info
->action_list
.tree
= splay_tree_new (text_action_compare
,
6147 relax_info
->action_list
.map
.n_entries
= 0;
6148 relax_info
->action_list
.map
.entry
= NULL
;
6150 relax_info
->fix_list
= NULL
;
6151 relax_info
->fix_array
= NULL
;
6152 relax_info
->fix_array_count
= 0;
6154 relax_info
->allocated_relocs
= NULL
;
6155 relax_info
->relocs_count
= 0;
6156 relax_info
->allocated_relocs_count
= 0;
6160 /* Coalescing literals may require a relocation to refer to a section in
6161 a different input file, but the standard relocation information
6162 cannot express that. Instead, the reloc_bfd_fix structures are used
6163 to "fix" the relocations that refer to sections in other input files.
6164 These structures are kept on per-section lists. The "src_type" field
6165 records the relocation type in case there are multiple relocations on
6166 the same location. FIXME: This is ugly; an alternative might be to
6167 add new symbols with the "owner" field to some other input file. */
6169 struct reloc_bfd_fix_struct
6173 unsigned src_type
; /* Relocation type. */
6175 asection
*target_sec
;
6176 bfd_vma target_offset
;
6179 reloc_bfd_fix
*next
;
6183 static reloc_bfd_fix
*
6184 reloc_bfd_fix_init (asection
*src_sec
,
6187 asection
*target_sec
,
6188 bfd_vma target_offset
,
6193 fix
= (reloc_bfd_fix
*) bfd_malloc (sizeof (reloc_bfd_fix
));
6194 fix
->src_sec
= src_sec
;
6195 fix
->src_offset
= src_offset
;
6196 fix
->src_type
= src_type
;
6197 fix
->target_sec
= target_sec
;
6198 fix
->target_offset
= target_offset
;
6199 fix
->translated
= translated
;
6206 add_fix (asection
*src_sec
, reloc_bfd_fix
*fix
)
6208 xtensa_relax_info
*relax_info
;
6210 relax_info
= get_xtensa_relax_info (src_sec
);
6211 fix
->next
= relax_info
->fix_list
;
6212 relax_info
->fix_list
= fix
;
6217 fix_compare (const void *ap
, const void *bp
)
6219 const reloc_bfd_fix
*a
= (const reloc_bfd_fix
*) ap
;
6220 const reloc_bfd_fix
*b
= (const reloc_bfd_fix
*) bp
;
6222 if (a
->src_offset
!= b
->src_offset
)
6223 return (a
->src_offset
- b
->src_offset
);
6224 return (a
->src_type
- b
->src_type
);
6229 cache_fix_array (asection
*sec
)
6231 unsigned i
, count
= 0;
6233 xtensa_relax_info
*relax_info
= get_xtensa_relax_info (sec
);
6235 if (relax_info
== NULL
)
6237 if (relax_info
->fix_list
== NULL
)
6240 for (r
= relax_info
->fix_list
; r
!= NULL
; r
= r
->next
)
6243 relax_info
->fix_array
=
6244 (reloc_bfd_fix
*) bfd_malloc (sizeof (reloc_bfd_fix
) * count
);
6245 relax_info
->fix_array_count
= count
;
6247 r
= relax_info
->fix_list
;
6248 for (i
= 0; i
< count
; i
++, r
= r
->next
)
6250 relax_info
->fix_array
[count
- 1 - i
] = *r
;
6251 relax_info
->fix_array
[count
- 1 - i
].next
= NULL
;
6254 qsort (relax_info
->fix_array
, relax_info
->fix_array_count
,
6255 sizeof (reloc_bfd_fix
), fix_compare
);
6259 static reloc_bfd_fix
*
6260 get_bfd_fix (asection
*sec
, bfd_vma offset
, unsigned type
)
6262 xtensa_relax_info
*relax_info
= get_xtensa_relax_info (sec
);
6266 if (relax_info
== NULL
)
6268 if (relax_info
->fix_list
== NULL
)
6271 if (relax_info
->fix_array
== NULL
)
6272 cache_fix_array (sec
);
6274 key
.src_offset
= offset
;
6275 key
.src_type
= type
;
6276 rv
= bsearch (&key
, relax_info
->fix_array
, relax_info
->fix_array_count
,
6277 sizeof (reloc_bfd_fix
), fix_compare
);
6282 /* Section caching. */
6284 typedef struct section_cache_struct section_cache_t
;
6286 struct section_cache_struct
6290 bfd_byte
*contents
; /* Cache of the section contents. */
6291 bfd_size_type content_length
;
6293 property_table_entry
*ptbl
; /* Cache of the section property table. */
6296 Elf_Internal_Rela
*relocs
; /* Cache of the section relocations. */
6297 unsigned reloc_count
;
6302 init_section_cache (section_cache_t
*sec_cache
)
6304 memset (sec_cache
, 0, sizeof (*sec_cache
));
6309 free_section_cache (section_cache_t
*sec_cache
)
6313 release_contents (sec_cache
->sec
, sec_cache
->contents
);
6314 release_internal_relocs (sec_cache
->sec
, sec_cache
->relocs
);
6315 free (sec_cache
->ptbl
);
6321 section_cache_section (section_cache_t
*sec_cache
,
6323 struct bfd_link_info
*link_info
)
6326 property_table_entry
*prop_table
= NULL
;
6328 bfd_byte
*contents
= NULL
;
6329 Elf_Internal_Rela
*internal_relocs
= NULL
;
6330 bfd_size_type sec_size
;
6334 if (sec
== sec_cache
->sec
)
6338 sec_size
= bfd_get_section_limit (abfd
, sec
);
6340 /* Get the contents. */
6341 contents
= retrieve_contents (abfd
, sec
, link_info
->keep_memory
);
6342 if (contents
== NULL
&& sec_size
!= 0)
6345 /* Get the relocations. */
6346 internal_relocs
= retrieve_internal_relocs (abfd
, sec
,
6347 link_info
->keep_memory
);
6349 /* Get the entry table. */
6350 ptblsize
= xtensa_read_table_entries (abfd
, sec
, &prop_table
,
6351 XTENSA_PROP_SEC_NAME
, false);
6355 /* Fill in the new section cache. */
6356 free_section_cache (sec_cache
);
6357 init_section_cache (sec_cache
);
6359 sec_cache
->sec
= sec
;
6360 sec_cache
->contents
= contents
;
6361 sec_cache
->content_length
= sec_size
;
6362 sec_cache
->relocs
= internal_relocs
;
6363 sec_cache
->reloc_count
= sec
->reloc_count
;
6364 sec_cache
->pte_count
= ptblsize
;
6365 sec_cache
->ptbl
= prop_table
;
6370 release_contents (sec
, contents
);
6371 release_internal_relocs (sec
, internal_relocs
);
6377 /* Extended basic blocks. */
6379 /* An ebb_struct represents an Extended Basic Block. Within this
6380 range, we guarantee that all instructions are decodable, the
6381 property table entries are contiguous, and no property table
6382 specifies a segment that cannot have instructions moved. This
6383 structure contains caches of the contents, property table and
6384 relocations for the specified section for easy use. The range is
6385 specified by ranges of indices for the byte offset, property table
6386 offsets and relocation offsets. These must be consistent. */
6388 typedef struct ebb_struct ebb_t
;
6394 bfd_byte
*contents
; /* Cache of the section contents. */
6395 bfd_size_type content_length
;
6397 property_table_entry
*ptbl
; /* Cache of the section property table. */
6400 Elf_Internal_Rela
*relocs
; /* Cache of the section relocations. */
6401 unsigned reloc_count
;
6403 bfd_vma start_offset
; /* Offset in section. */
6404 unsigned start_ptbl_idx
; /* Offset in the property table. */
6405 unsigned start_reloc_idx
; /* Offset in the relocations. */
6408 unsigned end_ptbl_idx
;
6409 unsigned end_reloc_idx
;
6411 bool ends_section
; /* Is this the last ebb in a section? */
6413 /* The unreachable property table at the end of this set of blocks;
6414 NULL if the end is not an unreachable block. */
6415 property_table_entry
*ends_unreachable
;
6419 enum ebb_target_enum
6422 EBB_DESIRE_TGT_ALIGN
,
6423 EBB_REQUIRE_TGT_ALIGN
,
6424 EBB_REQUIRE_LOOP_ALIGN
,
6429 /* proposed_action_struct is similar to the text_action_struct except
6430 that is represents a potential transformation, not one that will
6431 occur. We build a list of these for an extended basic block
6432 and use them to compute the actual actions desired. We must be
6433 careful that the entire set of actual actions we perform do not
6434 break any relocations that would fit if the actions were not
6437 typedef struct proposed_action_struct proposed_action
;
6439 struct proposed_action_struct
6441 enum ebb_target_enum align_type
; /* for the target alignment */
6442 bfd_vma alignment_pow
;
6443 text_action_t action
;
6446 bool do_action
; /* If false, then we will not perform the action. */
6450 /* The ebb_constraint_struct keeps a set of proposed actions for an
6451 extended basic block. */
6453 typedef struct ebb_constraint_struct ebb_constraint
;
6455 struct ebb_constraint_struct
6460 /* Bytes of extra space at the beginning if movable. */
6461 int start_extra_space
;
6463 enum ebb_target_enum start_align
;
6467 /* Bytes of extra space at the end if movable. */
6468 int end_extra_space
;
6470 unsigned action_count
;
6471 unsigned action_allocated
;
6473 /* Array of proposed actions. */
6474 proposed_action
*actions
;
6476 /* Action alignments -- one for each proposed action. */
6477 enum ebb_target_enum
*action_aligns
;
6482 init_ebb_constraint (ebb_constraint
*c
)
6484 memset (c
, 0, sizeof (ebb_constraint
));
6489 free_ebb_constraint (ebb_constraint
*c
)
6496 init_ebb (ebb_t
*ebb
,
6499 bfd_size_type content_length
,
6500 property_table_entry
*prop_table
,
6502 Elf_Internal_Rela
*internal_relocs
,
6503 unsigned reloc_count
)
6505 memset (ebb
, 0, sizeof (ebb_t
));
6507 ebb
->contents
= contents
;
6508 ebb
->content_length
= content_length
;
6509 ebb
->ptbl
= prop_table
;
6510 ebb
->pte_count
= ptblsize
;
6511 ebb
->relocs
= internal_relocs
;
6512 ebb
->reloc_count
= reloc_count
;
6513 ebb
->start_offset
= 0;
6514 ebb
->end_offset
= ebb
->content_length
- 1;
6515 ebb
->start_ptbl_idx
= 0;
6516 ebb
->end_ptbl_idx
= ptblsize
;
6517 ebb
->start_reloc_idx
= 0;
6518 ebb
->end_reloc_idx
= reloc_count
;
6522 /* Extend the ebb to all decodable contiguous sections. The algorithm
6523 for building a basic block around an instruction is to push it
6524 forward until we hit the end of a section, an unreachable block or
6525 a block that cannot be transformed. Then we push it backwards
6526 searching for similar conditions. */
6528 static bool extend_ebb_bounds_forward (ebb_t
*);
6529 static bool extend_ebb_bounds_backward (ebb_t
*);
6530 static bfd_size_type insn_block_decodable_len
6531 (bfd_byte
*, bfd_size_type
, bfd_vma
, bfd_size_type
);
6534 extend_ebb_bounds (ebb_t
*ebb
)
6536 if (!extend_ebb_bounds_forward (ebb
))
6538 if (!extend_ebb_bounds_backward (ebb
))
6545 extend_ebb_bounds_forward (ebb_t
*ebb
)
6547 property_table_entry
*the_entry
, *new_entry
;
6549 the_entry
= &ebb
->ptbl
[ebb
->end_ptbl_idx
];
6551 /* Stop when (1) we cannot decode an instruction, (2) we are at
6552 the end of the property tables, (3) we hit a non-contiguous property
6553 table entry, (4) we hit a NO_TRANSFORM region. */
6558 bfd_size_type insn_block_len
;
6560 entry_end
= the_entry
->address
- ebb
->sec
->vma
+ the_entry
->size
;
6562 insn_block_decodable_len (ebb
->contents
, ebb
->content_length
,
6564 entry_end
- ebb
->end_offset
);
6565 if (insn_block_len
!= (entry_end
- ebb
->end_offset
))
6568 /* xgettext:c-format */
6569 (_("%pB(%pA+%#" PRIx64
"): could not decode instruction; "
6570 "possible configuration mismatch"),
6571 ebb
->sec
->owner
, ebb
->sec
,
6572 (uint64_t) (ebb
->end_offset
+ insn_block_len
));
6575 ebb
->end_offset
+= insn_block_len
;
6577 if (ebb
->end_offset
== ebb
->sec
->size
)
6578 ebb
->ends_section
= true;
6580 /* Update the reloc counter. */
6581 while (ebb
->end_reloc_idx
+ 1 < ebb
->reloc_count
6582 && (ebb
->relocs
[ebb
->end_reloc_idx
+ 1].r_offset
6585 ebb
->end_reloc_idx
++;
6588 if (ebb
->end_ptbl_idx
+ 1 == ebb
->pte_count
)
6591 new_entry
= &ebb
->ptbl
[ebb
->end_ptbl_idx
+ 1];
6592 if (((new_entry
->flags
& XTENSA_PROP_INSN
) == 0)
6593 || ((new_entry
->flags
& XTENSA_PROP_NO_TRANSFORM
) != 0)
6594 || ((the_entry
->flags
& XTENSA_PROP_ALIGN
) != 0))
6597 if (the_entry
->address
+ the_entry
->size
!= new_entry
->address
)
6600 the_entry
= new_entry
;
6601 ebb
->end_ptbl_idx
++;
6604 /* Quick check for an unreachable or end of file just at the end. */
6605 if (ebb
->end_ptbl_idx
+ 1 == ebb
->pte_count
)
6607 if (ebb
->end_offset
== ebb
->content_length
)
6608 ebb
->ends_section
= true;
6612 new_entry
= &ebb
->ptbl
[ebb
->end_ptbl_idx
+ 1];
6613 if ((new_entry
->flags
& XTENSA_PROP_UNREACHABLE
) != 0
6614 && the_entry
->address
+ the_entry
->size
== new_entry
->address
)
6615 ebb
->ends_unreachable
= new_entry
;
6618 /* Any other ending requires exact alignment. */
6624 extend_ebb_bounds_backward (ebb_t
*ebb
)
6626 property_table_entry
*the_entry
, *new_entry
;
6628 the_entry
= &ebb
->ptbl
[ebb
->start_ptbl_idx
];
6630 /* Stop when (1) we cannot decode the instructions in the current entry.
6631 (2) we are at the beginning of the property tables, (3) we hit a
6632 non-contiguous property table entry, (4) we hit a NO_TRANSFORM region. */
6636 bfd_vma block_begin
;
6637 bfd_size_type insn_block_len
;
6639 block_begin
= the_entry
->address
- ebb
->sec
->vma
;
6641 insn_block_decodable_len (ebb
->contents
, ebb
->content_length
,
6643 ebb
->start_offset
- block_begin
);
6644 if (insn_block_len
!= ebb
->start_offset
- block_begin
)
6647 /* xgettext:c-format */
6648 (_("%pB(%pA+%#" PRIx64
"): could not decode instruction; "
6649 "possible configuration mismatch"),
6650 ebb
->sec
->owner
, ebb
->sec
,
6651 (uint64_t) (ebb
->end_offset
+ insn_block_len
));
6654 ebb
->start_offset
-= insn_block_len
;
6656 /* Update the reloc counter. */
6657 while (ebb
->start_reloc_idx
> 0
6658 && (ebb
->relocs
[ebb
->start_reloc_idx
- 1].r_offset
6659 >= ebb
->start_offset
))
6661 ebb
->start_reloc_idx
--;
6664 if (ebb
->start_ptbl_idx
== 0)
6667 new_entry
= &ebb
->ptbl
[ebb
->start_ptbl_idx
- 1];
6668 if ((new_entry
->flags
& XTENSA_PROP_INSN
) == 0
6669 || ((new_entry
->flags
& XTENSA_PROP_NO_TRANSFORM
) != 0)
6670 || ((new_entry
->flags
& XTENSA_PROP_ALIGN
) != 0))
6672 if (new_entry
->address
+ new_entry
->size
!= the_entry
->address
)
6675 the_entry
= new_entry
;
6676 ebb
->start_ptbl_idx
--;
6682 static bfd_size_type
6683 insn_block_decodable_len (bfd_byte
*contents
,
6684 bfd_size_type content_len
,
6685 bfd_vma block_offset
,
6686 bfd_size_type block_len
)
6688 bfd_vma offset
= block_offset
;
6690 while (offset
< block_offset
+ block_len
)
6692 bfd_size_type insn_len
= 0;
6694 insn_len
= insn_decode_len (contents
, content_len
, offset
);
6696 return (offset
- block_offset
);
6699 return (offset
- block_offset
);
6704 ebb_propose_action (ebb_constraint
*c
,
6705 enum ebb_target_enum align_type
,
6706 bfd_vma alignment_pow
,
6707 text_action_t action
,
6712 proposed_action
*act
;
6714 if (c
->action_allocated
<= c
->action_count
)
6716 unsigned new_allocated
, i
;
6717 proposed_action
*new_actions
;
6719 new_allocated
= (c
->action_count
+ 2) * 2;
6720 new_actions
= (proposed_action
*)
6721 bfd_zmalloc (sizeof (proposed_action
) * new_allocated
);
6723 for (i
= 0; i
< c
->action_count
; i
++)
6724 new_actions
[i
] = c
->actions
[i
];
6726 c
->actions
= new_actions
;
6727 c
->action_allocated
= new_allocated
;
6730 act
= &c
->actions
[c
->action_count
];
6731 act
->align_type
= align_type
;
6732 act
->alignment_pow
= alignment_pow
;
6733 act
->action
= action
;
6734 act
->offset
= offset
;
6735 act
->removed_bytes
= removed_bytes
;
6736 act
->do_action
= do_action
;
6742 /* Access to internal relocations, section contents and symbols. */
6744 /* During relaxation, we need to modify relocations, section contents,
6745 and symbol definitions, and we need to keep the original values from
6746 being reloaded from the input files, i.e., we need to "pin" the
6747 modified values in memory. We also want to continue to observe the
6748 setting of the "keep-memory" flag. The following functions wrap the
6749 standard BFD functions to take care of this for us. */
6751 static Elf_Internal_Rela
*
6752 retrieve_internal_relocs (bfd
*abfd
, asection
*sec
, bool keep_memory
)
6754 Elf_Internal_Rela
*internal_relocs
;
6756 if ((sec
->flags
& SEC_LINKER_CREATED
) != 0)
6759 internal_relocs
= elf_section_data (sec
)->relocs
;
6760 if (internal_relocs
== NULL
)
6761 internal_relocs
= (_bfd_elf_link_read_relocs
6762 (abfd
, sec
, NULL
, NULL
, keep_memory
));
6763 return internal_relocs
;
6768 pin_internal_relocs (asection
*sec
, Elf_Internal_Rela
*internal_relocs
)
6770 elf_section_data (sec
)->relocs
= internal_relocs
;
6775 release_internal_relocs (asection
*sec
, Elf_Internal_Rela
*internal_relocs
)
6777 if (elf_section_data (sec
)->relocs
!= internal_relocs
)
6778 free (internal_relocs
);
6783 retrieve_contents (bfd
*abfd
, asection
*sec
, bool keep_memory
)
6786 bfd_size_type sec_size
;
6788 sec_size
= bfd_get_section_limit (abfd
, sec
);
6789 contents
= elf_section_data (sec
)->this_hdr
.contents
;
6791 if (contents
== NULL
&& sec_size
!= 0)
6793 if (!bfd_malloc_and_get_section (abfd
, sec
, &contents
))
6799 elf_section_data (sec
)->this_hdr
.contents
= contents
;
6806 pin_contents (asection
*sec
, bfd_byte
*contents
)
6808 elf_section_data (sec
)->this_hdr
.contents
= contents
;
6813 release_contents (asection
*sec
, bfd_byte
*contents
)
6815 if (elf_section_data (sec
)->this_hdr
.contents
!= contents
)
6820 static Elf_Internal_Sym
*
6821 retrieve_local_syms (bfd
*input_bfd
)
6823 Elf_Internal_Shdr
*symtab_hdr
;
6824 Elf_Internal_Sym
*isymbuf
;
6827 symtab_hdr
= &elf_tdata (input_bfd
)->symtab_hdr
;
6828 locsymcount
= symtab_hdr
->sh_info
;
6830 isymbuf
= (Elf_Internal_Sym
*) symtab_hdr
->contents
;
6831 if (isymbuf
== NULL
&& locsymcount
!= 0)
6832 isymbuf
= bfd_elf_get_elf_syms (input_bfd
, symtab_hdr
, locsymcount
, 0,
6835 /* Save the symbols for this input file so they won't be read again. */
6836 if (isymbuf
&& isymbuf
!= (Elf_Internal_Sym
*) symtab_hdr
->contents
)
6837 symtab_hdr
->contents
= (unsigned char *) isymbuf
;
6843 /* Code for link-time relaxation. */
6845 /* Initialization for relaxation: */
6846 static bool analyze_relocations (struct bfd_link_info
*);
6847 static bool find_relaxable_sections
6848 (bfd
*, asection
*, struct bfd_link_info
*, bool *);
6849 static bool collect_source_relocs
6850 (bfd
*, asection
*, struct bfd_link_info
*);
6851 static bool is_resolvable_asm_expansion
6852 (bfd
*, asection
*, bfd_byte
*, Elf_Internal_Rela
*, struct bfd_link_info
*,
6854 static Elf_Internal_Rela
*find_associated_l32r_irel
6855 (bfd
*, asection
*, bfd_byte
*, Elf_Internal_Rela
*, Elf_Internal_Rela
*);
6856 static bool compute_text_actions
6857 (bfd
*, asection
*, struct bfd_link_info
*);
6858 static bool compute_ebb_proposed_actions (ebb_constraint
*);
6859 static bool compute_ebb_actions (ebb_constraint
*);
6860 typedef struct reloc_range_list_struct reloc_range_list
;
6861 static bool check_section_ebb_pcrels_fit
6862 (bfd
*, asection
*, bfd_byte
*, Elf_Internal_Rela
*,
6863 reloc_range_list
*, const ebb_constraint
*,
6864 const xtensa_opcode
*);
6865 static bool check_section_ebb_reduces (const ebb_constraint
*);
6866 static void text_action_add_proposed
6867 (text_action_list
*, const ebb_constraint
*, asection
*);
6870 static bool compute_removed_literals
6871 (bfd
*, asection
*, struct bfd_link_info
*, value_map_hash_table
*);
6872 static Elf_Internal_Rela
*get_irel_at_offset
6873 (asection
*, Elf_Internal_Rela
*, bfd_vma
);
6874 static bool is_removable_literal
6875 (const source_reloc
*, int, const source_reloc
*, int, asection
*,
6876 property_table_entry
*, int);
6877 static bool remove_dead_literal
6878 (bfd
*, asection
*, struct bfd_link_info
*, Elf_Internal_Rela
*,
6879 Elf_Internal_Rela
*, source_reloc
*, property_table_entry
*, int);
6880 static bool identify_literal_placement
6881 (bfd
*, asection
*, bfd_byte
*, struct bfd_link_info
*,
6882 value_map_hash_table
*, bool *, Elf_Internal_Rela
*, int,
6883 source_reloc
*, property_table_entry
*, int, section_cache_t
*,
6885 static bool relocations_reach (source_reloc
*, int, const r_reloc
*);
6886 static bool coalesce_shared_literal
6887 (asection
*, source_reloc
*, property_table_entry
*, int, value_map
*);
6888 static bool move_shared_literal
6889 (asection
*, struct bfd_link_info
*, source_reloc
*, property_table_entry
*,
6890 int, const r_reloc
*, const literal_value
*, section_cache_t
*);
6893 static bool relax_section (bfd
*, asection
*, struct bfd_link_info
*);
6894 static bool translate_section_fixes (asection
*);
6895 static bool translate_reloc_bfd_fix (reloc_bfd_fix
*);
6896 static asection
*translate_reloc (const r_reloc
*, r_reloc
*, asection
*);
6897 static void shrink_dynamic_reloc_sections
6898 (struct bfd_link_info
*, bfd
*, asection
*, Elf_Internal_Rela
*);
6899 static bool move_literal
6900 (bfd
*, struct bfd_link_info
*, asection
*, bfd_vma
, bfd_byte
*,
6901 xtensa_relax_info
*, Elf_Internal_Rela
**, const literal_value
*);
6902 static bool relax_property_section
6903 (bfd
*, asection
*, struct bfd_link_info
*);
6906 static bool relax_section_symbols (bfd
*, asection
*);
6910 elf_xtensa_relax_section (bfd
*abfd
,
6912 struct bfd_link_info
*link_info
,
6915 static value_map_hash_table
*values
= NULL
;
6916 static bool relocations_analyzed
= false;
6917 xtensa_relax_info
*relax_info
;
6919 if (!relocations_analyzed
)
6921 /* Do some overall initialization for relaxation. */
6922 values
= value_map_hash_table_init ();
6925 relaxing_section
= true;
6926 if (!analyze_relocations (link_info
))
6928 relocations_analyzed
= true;
6932 /* Don't mess with linker-created sections. */
6933 if ((sec
->flags
& SEC_LINKER_CREATED
) != 0)
6936 relax_info
= get_xtensa_relax_info (sec
);
6937 BFD_ASSERT (relax_info
!= NULL
);
6939 switch (relax_info
->visited
)
6942 /* Note: It would be nice to fold this pass into
6943 analyze_relocations, but it is important for this step that the
6944 sections be examined in link order. */
6945 if (!compute_removed_literals (abfd
, sec
, link_info
, values
))
6952 value_map_hash_table_delete (values
);
6954 if (!relax_section (abfd
, sec
, link_info
))
6960 if (!relax_section_symbols (abfd
, sec
))
6965 relax_info
->visited
++;
6970 /* Initialization for relaxation. */
6972 /* This function is called once at the start of relaxation. It scans
6973 all the input sections and marks the ones that are relaxable (i.e.,
6974 literal sections with L32R relocations against them), and then
6975 collects source_reloc information for all the relocations against
6976 those relaxable sections. During this process, it also detects
6977 longcalls, i.e., calls relaxed by the assembler into indirect
6978 calls, that can be optimized back into direct calls. Within each
6979 extended basic block (ebb) containing an optimized longcall, it
6980 computes a set of "text actions" that can be performed to remove
6981 the L32R associated with the longcall while optionally preserving
6982 branch target alignments. */
6985 analyze_relocations (struct bfd_link_info
*link_info
)
6989 bool is_relaxable
= false;
6991 /* Initialize the per-section relaxation info. */
6992 for (abfd
= link_info
->input_bfds
; abfd
!= NULL
; abfd
= abfd
->link
.next
)
6993 for (sec
= abfd
->sections
; sec
!= NULL
; sec
= sec
->next
)
6995 init_xtensa_relax_info (sec
);
6998 /* Mark relaxable sections (and count relocations against each one). */
6999 for (abfd
= link_info
->input_bfds
; abfd
!= NULL
; abfd
= abfd
->link
.next
)
7000 for (sec
= abfd
->sections
; sec
!= NULL
; sec
= sec
->next
)
7002 if (!find_relaxable_sections (abfd
, sec
, link_info
, &is_relaxable
))
7006 /* Bail out if there are no relaxable sections. */
7010 /* Allocate space for source_relocs. */
7011 for (abfd
= link_info
->input_bfds
; abfd
!= NULL
; abfd
= abfd
->link
.next
)
7012 for (sec
= abfd
->sections
; sec
!= NULL
; sec
= sec
->next
)
7014 xtensa_relax_info
*relax_info
;
7016 relax_info
= get_xtensa_relax_info (sec
);
7017 if (relax_info
->is_relaxable_literal_section
7018 || relax_info
->is_relaxable_asm_section
)
7020 relax_info
->src_relocs
= (source_reloc
*)
7021 bfd_malloc (relax_info
->src_count
* sizeof (source_reloc
));
7024 relax_info
->src_count
= 0;
7027 /* Collect info on relocations against each relaxable section. */
7028 for (abfd
= link_info
->input_bfds
; abfd
!= NULL
; abfd
= abfd
->link
.next
)
7029 for (sec
= abfd
->sections
; sec
!= NULL
; sec
= sec
->next
)
7031 if (!collect_source_relocs (abfd
, sec
, link_info
))
7035 /* Compute the text actions. */
7036 for (abfd
= link_info
->input_bfds
; abfd
!= NULL
; abfd
= abfd
->link
.next
)
7037 for (sec
= abfd
->sections
; sec
!= NULL
; sec
= sec
->next
)
7039 if (!compute_text_actions (abfd
, sec
, link_info
))
7047 /* Find all the sections that might be relaxed. The motivation for
7048 this pass is that collect_source_relocs() needs to record _all_ the
7049 relocations that target each relaxable section. That is expensive
7050 and unnecessary unless the target section is actually going to be
7051 relaxed. This pass identifies all such sections by checking if
7052 they have L32Rs pointing to them. In the process, the total number
7053 of relocations targeting each section is also counted so that we
7054 know how much space to allocate for source_relocs against each
7055 relaxable literal section. */
7058 find_relaxable_sections (bfd
*abfd
,
7060 struct bfd_link_info
*link_info
,
7061 bool *is_relaxable_p
)
7063 Elf_Internal_Rela
*internal_relocs
;
7067 xtensa_relax_info
*source_relax_info
;
7070 internal_relocs
= retrieve_internal_relocs (abfd
, sec
,
7071 link_info
->keep_memory
);
7072 if (internal_relocs
== NULL
)
7075 contents
= retrieve_contents (abfd
, sec
, link_info
->keep_memory
);
7076 if (contents
== NULL
&& sec
->size
!= 0)
7082 source_relax_info
= get_xtensa_relax_info (sec
);
7083 for (i
= 0; i
< sec
->reloc_count
; i
++)
7085 Elf_Internal_Rela
*irel
= &internal_relocs
[i
];
7087 asection
*target_sec
;
7088 xtensa_relax_info
*target_relax_info
;
7090 /* If this section has not already been marked as "relaxable", and
7091 if it contains any ASM_EXPAND relocations (marking expanded
7092 longcalls) that can be optimized into direct calls, then mark
7093 the section as "relaxable". */
7094 if (source_relax_info
7095 && !source_relax_info
->is_relaxable_asm_section
7096 && ELF32_R_TYPE (irel
->r_info
) == R_XTENSA_ASM_EXPAND
)
7098 bool is_reachable
= false;
7099 if (is_resolvable_asm_expansion (abfd
, sec
, contents
, irel
,
7100 link_info
, &is_reachable
)
7103 source_relax_info
->is_relaxable_asm_section
= true;
7104 *is_relaxable_p
= true;
7108 r_reloc_init (&r_rel
, abfd
, irel
, contents
,
7109 bfd_get_section_limit (abfd
, sec
));
7111 target_sec
= r_reloc_get_section (&r_rel
);
7112 target_relax_info
= get_xtensa_relax_info (target_sec
);
7113 if (!target_relax_info
)
7116 /* Count PC-relative operand relocations against the target section.
7117 Note: The conditions tested here must match the conditions under
7118 which init_source_reloc is called in collect_source_relocs(). */
7119 is_l32r_reloc
= false;
7120 if (is_operand_relocation (ELF32_R_TYPE (irel
->r_info
)))
7122 xtensa_opcode opcode
=
7123 get_relocation_opcode (abfd
, sec
, contents
, irel
);
7124 if (opcode
!= XTENSA_UNDEFINED
)
7126 is_l32r_reloc
= (opcode
== get_l32r_opcode ());
7127 if (!is_alt_relocation (ELF32_R_TYPE (irel
->r_info
))
7129 target_relax_info
->src_count
++;
7133 if (is_l32r_reloc
&& r_reloc_is_defined (&r_rel
))
7135 /* Mark the target section as relaxable. */
7136 target_relax_info
->is_relaxable_literal_section
= true;
7137 *is_relaxable_p
= true;
7142 release_contents (sec
, contents
);
7143 release_internal_relocs (sec
, internal_relocs
);
7148 /* Record _all_ the relocations that point to relaxable sections, and
7149 get rid of ASM_EXPAND relocs by either converting them to
7150 ASM_SIMPLIFY or by removing them. */
7153 collect_source_relocs (bfd
*abfd
,
7155 struct bfd_link_info
*link_info
)
7157 Elf_Internal_Rela
*internal_relocs
;
7161 bfd_size_type sec_size
;
7163 internal_relocs
= retrieve_internal_relocs (abfd
, sec
,
7164 link_info
->keep_memory
);
7165 if (internal_relocs
== NULL
)
7168 sec_size
= bfd_get_section_limit (abfd
, sec
);
7169 contents
= retrieve_contents (abfd
, sec
, link_info
->keep_memory
);
7170 if (contents
== NULL
&& sec_size
!= 0)
7176 /* Record relocations against relaxable literal sections. */
7177 for (i
= 0; i
< sec
->reloc_count
; i
++)
7179 Elf_Internal_Rela
*irel
= &internal_relocs
[i
];
7181 asection
*target_sec
;
7182 xtensa_relax_info
*target_relax_info
;
7184 r_reloc_init (&r_rel
, abfd
, irel
, contents
, sec_size
);
7186 target_sec
= r_reloc_get_section (&r_rel
);
7187 target_relax_info
= get_xtensa_relax_info (target_sec
);
7189 if (target_relax_info
7190 && (target_relax_info
->is_relaxable_literal_section
7191 || target_relax_info
->is_relaxable_asm_section
))
7193 xtensa_opcode opcode
= XTENSA_UNDEFINED
;
7195 bool is_abs_literal
= false;
7197 if (is_alt_relocation (ELF32_R_TYPE (irel
->r_info
)))
7199 /* None of the current alternate relocs are PC-relative,
7200 and only PC-relative relocs matter here. However, we
7201 still need to record the opcode for literal
7203 opcode
= get_relocation_opcode (abfd
, sec
, contents
, irel
);
7204 if (opcode
== get_l32r_opcode ())
7206 is_abs_literal
= true;
7210 opcode
= XTENSA_UNDEFINED
;
7212 else if (is_operand_relocation (ELF32_R_TYPE (irel
->r_info
)))
7214 opcode
= get_relocation_opcode (abfd
, sec
, contents
, irel
);
7215 opnd
= get_relocation_opnd (opcode
, ELF32_R_TYPE (irel
->r_info
));
7218 if (opcode
!= XTENSA_UNDEFINED
)
7220 int src_next
= target_relax_info
->src_next
++;
7221 source_reloc
*s_reloc
= &target_relax_info
->src_relocs
[src_next
];
7223 init_source_reloc (s_reloc
, sec
, &r_rel
, opcode
, opnd
,
7229 /* Now get rid of ASM_EXPAND relocations. At this point, the
7230 src_relocs array for the target literal section may still be
7231 incomplete, but it must at least contain the entries for the L32R
7232 relocations associated with ASM_EXPANDs because they were just
7233 added in the preceding loop over the relocations. */
7235 for (i
= 0; i
< sec
->reloc_count
; i
++)
7237 Elf_Internal_Rela
*irel
= &internal_relocs
[i
];
7240 if (!is_resolvable_asm_expansion (abfd
, sec
, contents
, irel
, link_info
,
7246 Elf_Internal_Rela
*l32r_irel
;
7248 asection
*target_sec
;
7249 xtensa_relax_info
*target_relax_info
;
7251 /* Mark the source_reloc for the L32R so that it will be
7252 removed in compute_removed_literals(), along with the
7253 associated literal. */
7254 l32r_irel
= find_associated_l32r_irel (abfd
, sec
, contents
,
7255 irel
, internal_relocs
);
7256 if (l32r_irel
== NULL
)
7259 r_reloc_init (&r_rel
, abfd
, l32r_irel
, contents
, sec_size
);
7261 target_sec
= r_reloc_get_section (&r_rel
);
7262 target_relax_info
= get_xtensa_relax_info (target_sec
);
7264 if (target_relax_info
7265 && (target_relax_info
->is_relaxable_literal_section
7266 || target_relax_info
->is_relaxable_asm_section
))
7268 source_reloc
*s_reloc
;
7270 /* Search the source_relocs for the entry corresponding to
7271 the l32r_irel. Note: The src_relocs array is not yet
7272 sorted, but it wouldn't matter anyway because we're
7273 searching by source offset instead of target offset. */
7274 s_reloc
= find_source_reloc (target_relax_info
->src_relocs
,
7275 target_relax_info
->src_next
,
7277 BFD_ASSERT (s_reloc
);
7278 s_reloc
->is_null
= true;
7281 /* Convert this reloc to ASM_SIMPLIFY. */
7282 irel
->r_info
= ELF32_R_INFO (ELF32_R_SYM (irel
->r_info
),
7283 R_XTENSA_ASM_SIMPLIFY
);
7284 l32r_irel
->r_info
= ELF32_R_INFO (0, R_XTENSA_NONE
);
7286 pin_internal_relocs (sec
, internal_relocs
);
7290 /* It is resolvable but doesn't reach. We resolve now
7291 by eliminating the relocation -- the call will remain
7292 expanded into L32R/CALLX. */
7293 irel
->r_info
= ELF32_R_INFO (0, R_XTENSA_NONE
);
7294 pin_internal_relocs (sec
, internal_relocs
);
7299 release_contents (sec
, contents
);
7300 release_internal_relocs (sec
, internal_relocs
);
7305 /* Return TRUE if the asm expansion can be resolved. Generally it can
7306 be resolved on a final link or when a partial link locates it in the
7307 same section as the target. Set "is_reachable" flag if the target of
7308 the call is within the range of a direct call, given the current VMA
7309 for this section and the target section. */
7312 is_resolvable_asm_expansion (bfd
*abfd
,
7315 Elf_Internal_Rela
*irel
,
7316 struct bfd_link_info
*link_info
,
7317 bool *is_reachable_p
)
7319 asection
*target_sec
;
7323 unsigned int first_align
;
7324 unsigned int adjust
;
7325 bfd_vma target_offset
;
7327 xtensa_opcode opcode
, direct_call_opcode
;
7328 bfd_vma self_address
;
7329 bfd_vma dest_address
;
7331 bfd_size_type sec_size
;
7333 *is_reachable_p
= false;
7335 if (contents
== NULL
)
7338 if (ELF32_R_TYPE (irel
->r_info
) != R_XTENSA_ASM_EXPAND
)
7341 sec_size
= bfd_get_section_limit (abfd
, sec
);
7342 opcode
= get_expanded_call_opcode (contents
+ irel
->r_offset
,
7343 sec_size
- irel
->r_offset
, &uses_l32r
);
7344 /* Optimization of longcalls that use CONST16 is not yet implemented. */
7348 direct_call_opcode
= swap_callx_for_call_opcode (opcode
);
7349 if (direct_call_opcode
== XTENSA_UNDEFINED
)
7352 /* Check and see that the target resolves. */
7353 r_reloc_init (&r_rel
, abfd
, irel
, contents
, sec_size
);
7354 if (!r_reloc_is_defined (&r_rel
))
7357 target_sec
= r_reloc_get_section (&r_rel
);
7358 target_offset
= r_rel
.target_offset
;
7360 /* If the target is in a shared library, then it doesn't reach. This
7361 isn't supposed to come up because the compiler should never generate
7362 non-PIC calls on systems that use shared libraries, but the linker
7363 shouldn't crash regardless. */
7364 if (!target_sec
->output_section
)
7367 /* For relocatable sections, we can only simplify when the output
7368 section of the target is the same as the output section of the
7370 if (bfd_link_relocatable (link_info
)
7371 && (target_sec
->output_section
!= sec
->output_section
7372 || is_reloc_sym_weak (abfd
, irel
)))
7375 if (target_sec
->output_section
!= sec
->output_section
)
7377 /* If the two sections are sufficiently far away that relaxation
7378 might take the call out of range, we can't simplify. For
7379 example, a positive displacement call into another memory
7380 could get moved to a lower address due to literal removal,
7381 but the destination won't move, and so the displacment might
7384 If the displacement is negative, assume the destination could
7385 move as far back as the start of the output section. The
7386 self_address will be at least as far into the output section
7387 as it is prior to relaxation.
7389 If the displacement is postive, assume the destination will be in
7390 it's pre-relaxed location (because relaxation only makes sections
7391 smaller). The self_address could go all the way to the beginning
7392 of the output section. */
7394 dest_address
= target_sec
->output_section
->vma
;
7395 self_address
= sec
->output_section
->vma
;
7397 if (sec
->output_section
->vma
> target_sec
->output_section
->vma
)
7398 self_address
+= sec
->output_offset
+ irel
->r_offset
+ 3;
7400 dest_address
+= bfd_get_section_limit (abfd
, target_sec
->output_section
);
7401 /* Call targets should be four-byte aligned. */
7402 dest_address
= (dest_address
+ 3) & ~3;
7407 self_address
= (sec
->output_section
->vma
7408 + sec
->output_offset
+ irel
->r_offset
+ 3);
7409 dest_address
= (target_sec
->output_section
->vma
7410 + target_sec
->output_offset
+ target_offset
);
7413 /* Adjust addresses with alignments for the worst case to see if call insn
7414 can fit. Don't relax l32r + callx to call if the target can be out of
7415 range due to alignment.
7416 Caller and target addresses are highest and lowest address.
7417 Search all sections between caller and target, looking for max alignment.
7418 The adjustment is max alignment bytes. If the alignment at the lowest
7419 address is less than the adjustment, apply the adjustment to highest
7422 /* Start from lowest address.
7423 Lowest address aligmnet is from input section.
7424 Initial alignment (adjust) is from input section. */
7425 if (dest_address
> self_address
)
7427 s
= sec
->output_section
;
7428 last_vma
= dest_address
;
7429 first_align
= sec
->alignment_power
;
7430 adjust
= target_sec
->alignment_power
;
7434 s
= target_sec
->output_section
;
7435 last_vma
= self_address
;
7436 first_align
= target_sec
->alignment_power
;
7437 adjust
= sec
->alignment_power
;
7442 /* Find the largest alignment in output section list. */
7443 for (; s
&& s
->vma
>= first_vma
&& s
->vma
<= last_vma
; s
= s
->next
)
7445 if (s
->alignment_power
> adjust
)
7446 adjust
= s
->alignment_power
;
7449 if (adjust
> first_align
)
7451 /* Alignment may enlarge the range, adjust highest address. */
7452 adjust
= 1 << adjust
;
7453 if (dest_address
> self_address
)
7455 dest_address
+= adjust
;
7459 self_address
+= adjust
;
7463 *is_reachable_p
= pcrel_reloc_fits (direct_call_opcode
, 0,
7464 self_address
, dest_address
);
7466 if ((self_address
>> CALL_SEGMENT_BITS
) !=
7467 (dest_address
>> CALL_SEGMENT_BITS
))
7474 static Elf_Internal_Rela
*
7475 find_associated_l32r_irel (bfd
*abfd
,
7478 Elf_Internal_Rela
*other_irel
,
7479 Elf_Internal_Rela
*internal_relocs
)
7483 for (i
= 0; i
< sec
->reloc_count
; i
++)
7485 Elf_Internal_Rela
*irel
= &internal_relocs
[i
];
7487 if (irel
== other_irel
)
7489 if (irel
->r_offset
!= other_irel
->r_offset
)
7491 if (is_l32r_relocation (abfd
, sec
, contents
, irel
))
7499 static xtensa_opcode
*
7500 build_reloc_opcodes (bfd
*abfd
,
7503 Elf_Internal_Rela
*internal_relocs
)
7506 xtensa_opcode
*reloc_opcodes
=
7507 (xtensa_opcode
*) bfd_malloc (sizeof (xtensa_opcode
) * sec
->reloc_count
);
7508 for (i
= 0; i
< sec
->reloc_count
; i
++)
7510 Elf_Internal_Rela
*irel
= &internal_relocs
[i
];
7511 reloc_opcodes
[i
] = get_relocation_opcode (abfd
, sec
, contents
, irel
);
7513 return reloc_opcodes
;
7516 struct reloc_range_struct
7519 bool add
; /* TRUE if start of a range, FALSE otherwise. */
7520 /* Original irel index in the array of relocations for a section. */
7521 unsigned irel_index
;
7523 typedef struct reloc_range_struct reloc_range
;
7525 typedef struct reloc_range_list_entry_struct reloc_range_list_entry
;
7526 struct reloc_range_list_entry_struct
7528 reloc_range_list_entry
*next
;
7529 reloc_range_list_entry
*prev
;
7530 Elf_Internal_Rela
*irel
;
7531 xtensa_opcode opcode
;
7535 struct reloc_range_list_struct
7537 /* The rest of the structure is only meaningful when ok is TRUE. */
7540 unsigned n_range
; /* Number of range markers. */
7541 reloc_range
*range
; /* Sorted range markers. */
7543 unsigned first
; /* Index of a first range element in the list. */
7544 unsigned last
; /* One past index of a last range element in the list. */
7546 unsigned n_list
; /* Number of list elements. */
7547 reloc_range_list_entry
*reloc
; /* */
7548 reloc_range_list_entry list_root
;
7552 reloc_range_compare (const void *a
, const void *b
)
7554 const reloc_range
*ra
= a
;
7555 const reloc_range
*rb
= b
;
7557 if (ra
->addr
!= rb
->addr
)
7558 return ra
->addr
< rb
->addr
? -1 : 1;
7559 if (ra
->add
!= rb
->add
)
7560 return ra
->add
? -1 : 1;
7565 build_reloc_ranges (bfd
*abfd
, asection
*sec
,
7567 Elf_Internal_Rela
*internal_relocs
,
7568 xtensa_opcode
*reloc_opcodes
,
7569 reloc_range_list
*list
)
7574 reloc_range
*ranges
= NULL
;
7575 reloc_range_list_entry
*reloc
=
7576 bfd_malloc (sec
->reloc_count
* sizeof (*reloc
));
7578 memset (list
, 0, sizeof (*list
));
7581 for (i
= 0; i
< sec
->reloc_count
; i
++)
7583 Elf_Internal_Rela
*irel
= &internal_relocs
[i
];
7584 int r_type
= ELF32_R_TYPE (irel
->r_info
);
7585 reloc_howto_type
*howto
= &elf_howto_table
[r_type
];
7588 if (r_type
== R_XTENSA_ASM_SIMPLIFY
7589 || r_type
== R_XTENSA_32_PCREL
7590 || !howto
->pc_relative
)
7593 r_reloc_init (&r_rel
, abfd
, irel
, contents
,
7594 bfd_get_section_limit (abfd
, sec
));
7596 if (r_reloc_get_section (&r_rel
) != sec
)
7601 max_n
= (max_n
+ 2) * 2;
7602 ranges
= bfd_realloc (ranges
, max_n
* sizeof (*ranges
));
7605 ranges
[n
].addr
= irel
->r_offset
;
7606 ranges
[n
+ 1].addr
= r_rel
.target_offset
;
7608 ranges
[n
].add
= ranges
[n
].addr
< ranges
[n
+ 1].addr
;
7609 ranges
[n
+ 1].add
= !ranges
[n
].add
;
7611 ranges
[n
].irel_index
= i
;
7612 ranges
[n
+ 1].irel_index
= i
;
7616 reloc
[i
].irel
= irel
;
7618 /* Every relocation won't possibly be checked in the optimized version of
7619 check_section_ebb_pcrels_fit, so this needs to be done here. */
7620 if (is_alt_relocation (ELF32_R_TYPE (irel
->r_info
)))
7622 /* None of the current alternate relocs are PC-relative,
7623 and only PC-relative relocs matter here. */
7627 xtensa_opcode opcode
;
7631 opcode
= reloc_opcodes
[i
];
7633 opcode
= get_relocation_opcode (abfd
, sec
, contents
, irel
);
7635 if (opcode
== XTENSA_UNDEFINED
)
7641 opnum
= get_relocation_opnd (opcode
, ELF32_R_TYPE (irel
->r_info
));
7642 if (opnum
== XTENSA_UNDEFINED
)
7648 /* Record relocation opcode and opnum as we've calculated them
7649 anyway and they won't change. */
7650 reloc
[i
].opcode
= opcode
;
7651 reloc
[i
].opnum
= opnum
;
7657 ranges
= bfd_realloc (ranges
, n
* sizeof (*ranges
));
7658 qsort (ranges
, n
, sizeof (*ranges
), reloc_range_compare
);
7661 list
->range
= ranges
;
7662 list
->reloc
= reloc
;
7663 list
->list_root
.prev
= &list
->list_root
;
7664 list
->list_root
.next
= &list
->list_root
;
7673 static void reloc_range_list_append (reloc_range_list
*list
,
7674 unsigned irel_index
)
7676 reloc_range_list_entry
*entry
= list
->reloc
+ irel_index
;
7678 entry
->prev
= list
->list_root
.prev
;
7679 entry
->next
= &list
->list_root
;
7680 entry
->prev
->next
= entry
;
7681 entry
->next
->prev
= entry
;
7685 static void reloc_range_list_remove (reloc_range_list
*list
,
7686 unsigned irel_index
)
7688 reloc_range_list_entry
*entry
= list
->reloc
+ irel_index
;
7690 entry
->next
->prev
= entry
->prev
;
7691 entry
->prev
->next
= entry
->next
;
7695 /* Update relocation list object so that it lists all relocations that cross
7696 [first; last] range. Range bounds should not decrease with successive
7698 static void reloc_range_list_update_range (reloc_range_list
*list
,
7699 bfd_vma first
, bfd_vma last
)
7701 /* This should not happen: EBBs are iterated from lower addresses to higher.
7702 But even if that happens there's no need to break: just flush current list
7703 and start from scratch. */
7704 if ((list
->last
> 0 && list
->range
[list
->last
- 1].addr
> last
) ||
7705 (list
->first
> 0 && list
->range
[list
->first
- 1].addr
>= first
))
7710 list
->list_root
.next
= &list
->list_root
;
7711 list
->list_root
.prev
= &list
->list_root
;
7712 fprintf (stderr
, "%s: move backwards requested\n", __func__
);
7715 for (; list
->last
< list
->n_range
&&
7716 list
->range
[list
->last
].addr
<= last
; ++list
->last
)
7717 if (list
->range
[list
->last
].add
)
7718 reloc_range_list_append (list
, list
->range
[list
->last
].irel_index
);
7720 for (; list
->first
< list
->n_range
&&
7721 list
->range
[list
->first
].addr
< first
; ++list
->first
)
7722 if (!list
->range
[list
->first
].add
)
7723 reloc_range_list_remove (list
, list
->range
[list
->first
].irel_index
);
7726 static void free_reloc_range_list (reloc_range_list
*list
)
7732 /* The compute_text_actions function will build a list of potential
7733 transformation actions for code in the extended basic block of each
7734 longcall that is optimized to a direct call. From this list we
7735 generate a set of actions to actually perform that optimizes for
7736 space and, if not using size_opt, maintains branch target
7739 These actions to be performed are placed on a per-section list.
7740 The actual changes are performed by relax_section() in the second
7744 compute_text_actions (bfd
*abfd
,
7746 struct bfd_link_info
*link_info
)
7748 xtensa_opcode
*reloc_opcodes
= NULL
;
7749 xtensa_relax_info
*relax_info
;
7751 Elf_Internal_Rela
*internal_relocs
;
7754 property_table_entry
*prop_table
= 0;
7756 bfd_size_type sec_size
;
7757 reloc_range_list relevant_relocs
;
7759 relax_info
= get_xtensa_relax_info (sec
);
7760 BFD_ASSERT (relax_info
);
7761 BFD_ASSERT (relax_info
->src_next
== relax_info
->src_count
);
7763 /* Do nothing if the section contains no optimized longcalls. */
7764 if (!relax_info
->is_relaxable_asm_section
)
7767 internal_relocs
= retrieve_internal_relocs (abfd
, sec
,
7768 link_info
->keep_memory
);
7770 if (internal_relocs
)
7771 qsort (internal_relocs
, sec
->reloc_count
, sizeof (Elf_Internal_Rela
),
7772 internal_reloc_compare
);
7774 sec_size
= bfd_get_section_limit (abfd
, sec
);
7775 contents
= retrieve_contents (abfd
, sec
, link_info
->keep_memory
);
7776 if (contents
== NULL
&& sec_size
!= 0)
7782 ptblsize
= xtensa_read_table_entries (abfd
, sec
, &prop_table
,
7783 XTENSA_PROP_SEC_NAME
, false);
7790 /* Precompute the opcode for each relocation. */
7791 reloc_opcodes
= build_reloc_opcodes (abfd
, sec
, contents
, internal_relocs
);
7793 build_reloc_ranges (abfd
, sec
, contents
, internal_relocs
, reloc_opcodes
,
7796 for (i
= 0; i
< sec
->reloc_count
; i
++)
7798 Elf_Internal_Rela
*irel
= &internal_relocs
[i
];
7800 property_table_entry
*the_entry
;
7803 ebb_constraint ebb_table
;
7804 bfd_size_type simplify_size
;
7806 if (irel
&& ELF32_R_TYPE (irel
->r_info
) != R_XTENSA_ASM_SIMPLIFY
)
7808 r_offset
= irel
->r_offset
;
7810 simplify_size
= get_asm_simplify_size (contents
, sec_size
, r_offset
);
7811 if (simplify_size
== 0)
7814 /* xgettext:c-format */
7815 (_("%pB(%pA+%#" PRIx64
"): could not decode instruction for "
7816 "XTENSA_ASM_SIMPLIFY relocation; "
7817 "possible configuration mismatch"),
7818 sec
->owner
, sec
, (uint64_t) r_offset
);
7822 /* If the instruction table is not around, then don't do this
7824 the_entry
= elf_xtensa_find_property_entry (prop_table
, ptblsize
,
7825 sec
->vma
+ irel
->r_offset
);
7826 if (the_entry
== NULL
|| XTENSA_NO_NOP_REMOVAL
)
7828 text_action_add (&relax_info
->action_list
,
7829 ta_convert_longcall
, sec
, r_offset
,
7834 /* If the next longcall happens to be at the same address as an
7835 unreachable section of size 0, then skip forward. */
7836 ptbl_idx
= the_entry
- prop_table
;
7837 while ((the_entry
->flags
& XTENSA_PROP_UNREACHABLE
)
7838 && the_entry
->size
== 0
7839 && ptbl_idx
+ 1 < ptblsize
7840 && (prop_table
[ptbl_idx
+ 1].address
7841 == prop_table
[ptbl_idx
].address
))
7847 if (the_entry
->flags
& XTENSA_PROP_NO_TRANSFORM
)
7848 /* NO_REORDER is OK */
7851 init_ebb_constraint (&ebb_table
);
7852 ebb
= &ebb_table
.ebb
;
7853 init_ebb (ebb
, sec
, contents
, sec_size
, prop_table
, ptblsize
,
7854 internal_relocs
, sec
->reloc_count
);
7855 ebb
->start_offset
= r_offset
+ simplify_size
;
7856 ebb
->end_offset
= r_offset
+ simplify_size
;
7857 ebb
->start_ptbl_idx
= ptbl_idx
;
7858 ebb
->end_ptbl_idx
= ptbl_idx
;
7859 ebb
->start_reloc_idx
= i
;
7860 ebb
->end_reloc_idx
= i
;
7862 if (!extend_ebb_bounds (ebb
)
7863 || !compute_ebb_proposed_actions (&ebb_table
)
7864 || !compute_ebb_actions (&ebb_table
)
7865 || !check_section_ebb_pcrels_fit (abfd
, sec
, contents
,
7868 &ebb_table
, reloc_opcodes
)
7869 || !check_section_ebb_reduces (&ebb_table
))
7871 /* If anything goes wrong or we get unlucky and something does
7872 not fit, with our plan because of expansion between
7873 critical branches, just convert to a NOP. */
7875 text_action_add (&relax_info
->action_list
,
7876 ta_convert_longcall
, sec
, r_offset
, 0);
7877 i
= ebb_table
.ebb
.end_reloc_idx
;
7878 free_ebb_constraint (&ebb_table
);
7882 text_action_add_proposed (&relax_info
->action_list
, &ebb_table
, sec
);
7884 /* Update the index so we do not go looking at the relocations
7885 we have already processed. */
7886 i
= ebb_table
.ebb
.end_reloc_idx
;
7887 free_ebb_constraint (&ebb_table
);
7890 free_reloc_range_list (&relevant_relocs
);
7893 if (action_list_count (&relax_info
->action_list
))
7894 print_action_list (stderr
, &relax_info
->action_list
);
7898 release_contents (sec
, contents
);
7899 release_internal_relocs (sec
, internal_relocs
);
7901 free (reloc_opcodes
);
7907 /* Do not widen an instruction if it is preceeded by a
7908 loop opcode. It might cause misalignment. */
7911 prev_instr_is_a_loop (bfd_byte
*contents
,
7912 bfd_size_type content_length
,
7913 bfd_size_type offset
)
7915 xtensa_opcode prev_opcode
;
7919 prev_opcode
= insn_decode_opcode (contents
, content_length
, offset
-3, 0);
7920 return (xtensa_opcode_is_loop (xtensa_default_isa
, prev_opcode
) == 1);
7924 /* Find all of the possible actions for an extended basic block. */
7927 compute_ebb_proposed_actions (ebb_constraint
*ebb_table
)
7929 const ebb_t
*ebb
= &ebb_table
->ebb
;
7930 unsigned rel_idx
= ebb
->start_reloc_idx
;
7931 property_table_entry
*entry
, *start_entry
, *end_entry
;
7933 xtensa_isa isa
= xtensa_default_isa
;
7935 static xtensa_insnbuf insnbuf
= NULL
;
7936 static xtensa_insnbuf slotbuf
= NULL
;
7938 if (insnbuf
== NULL
)
7940 insnbuf
= xtensa_insnbuf_alloc (isa
);
7941 slotbuf
= xtensa_insnbuf_alloc (isa
);
7944 start_entry
= &ebb
->ptbl
[ebb
->start_ptbl_idx
];
7945 end_entry
= &ebb
->ptbl
[ebb
->end_ptbl_idx
];
7947 for (entry
= start_entry
; entry
<= end_entry
; entry
++)
7949 bfd_vma start_offset
, end_offset
;
7950 bfd_size_type insn_len
;
7952 start_offset
= entry
->address
- ebb
->sec
->vma
;
7953 end_offset
= entry
->address
+ entry
->size
- ebb
->sec
->vma
;
7955 if (entry
== start_entry
)
7956 start_offset
= ebb
->start_offset
;
7957 if (entry
== end_entry
)
7958 end_offset
= ebb
->end_offset
;
7959 offset
= start_offset
;
7961 if (offset
== entry
->address
- ebb
->sec
->vma
7962 && (entry
->flags
& XTENSA_PROP_INSN_BRANCH_TARGET
) != 0)
7964 enum ebb_target_enum align_type
= EBB_DESIRE_TGT_ALIGN
;
7965 BFD_ASSERT (offset
!= end_offset
);
7966 if (offset
== end_offset
)
7969 insn_len
= insn_decode_len (ebb
->contents
, ebb
->content_length
,
7974 if (check_branch_target_aligned_address (offset
, insn_len
))
7975 align_type
= EBB_REQUIRE_TGT_ALIGN
;
7977 ebb_propose_action (ebb_table
, align_type
, 0,
7978 ta_none
, offset
, 0, true);
7981 while (offset
!= end_offset
)
7983 Elf_Internal_Rela
*irel
;
7984 xtensa_opcode opcode
;
7986 while (rel_idx
< ebb
->end_reloc_idx
7987 && (ebb
->relocs
[rel_idx
].r_offset
< offset
7988 || (ebb
->relocs
[rel_idx
].r_offset
== offset
7989 && (ELF32_R_TYPE (ebb
->relocs
[rel_idx
].r_info
)
7990 != R_XTENSA_ASM_SIMPLIFY
))))
7993 /* Check for longcall. */
7994 irel
= &ebb
->relocs
[rel_idx
];
7995 if (irel
->r_offset
== offset
7996 && ELF32_R_TYPE (irel
->r_info
) == R_XTENSA_ASM_SIMPLIFY
)
7998 bfd_size_type simplify_size
;
8000 simplify_size
= get_asm_simplify_size (ebb
->contents
,
8001 ebb
->content_length
,
8003 if (simplify_size
== 0)
8006 ebb_propose_action (ebb_table
, EBB_NO_ALIGN
, 0,
8007 ta_convert_longcall
, offset
, 0, true);
8009 offset
+= simplify_size
;
8013 if (offset
+ MIN_INSN_LENGTH
> ebb
->content_length
)
8015 xtensa_insnbuf_from_chars (isa
, insnbuf
, &ebb
->contents
[offset
],
8016 ebb
->content_length
- offset
);
8017 fmt
= xtensa_format_decode (isa
, insnbuf
);
8018 if (fmt
== XTENSA_UNDEFINED
)
8020 insn_len
= xtensa_format_length (isa
, fmt
);
8021 if (insn_len
== (bfd_size_type
) XTENSA_UNDEFINED
)
8024 if (xtensa_format_num_slots (isa
, fmt
) != 1)
8030 xtensa_format_get_slot (isa
, fmt
, 0, insnbuf
, slotbuf
);
8031 opcode
= xtensa_opcode_decode (isa
, fmt
, 0, slotbuf
);
8032 if (opcode
== XTENSA_UNDEFINED
)
8035 if ((entry
->flags
& XTENSA_PROP_INSN_NO_DENSITY
) == 0
8036 && (entry
->flags
& XTENSA_PROP_NO_TRANSFORM
) == 0
8037 && can_narrow_instruction (slotbuf
, fmt
, opcode
) != 0)
8039 /* Add an instruction narrow action. */
8040 ebb_propose_action (ebb_table
, EBB_NO_ALIGN
, 0,
8041 ta_narrow_insn
, offset
, 0, false);
8043 else if ((entry
->flags
& XTENSA_PROP_NO_TRANSFORM
) == 0
8044 && can_widen_instruction (slotbuf
, fmt
, opcode
) != 0
8045 && ! prev_instr_is_a_loop (ebb
->contents
,
8046 ebb
->content_length
, offset
))
8048 /* Add an instruction widen action. */
8049 ebb_propose_action (ebb_table
, EBB_NO_ALIGN
, 0,
8050 ta_widen_insn
, offset
, 0, false);
8052 else if (xtensa_opcode_is_loop (xtensa_default_isa
, opcode
) == 1)
8054 /* Check for branch targets. */
8055 ebb_propose_action (ebb_table
, EBB_REQUIRE_LOOP_ALIGN
, 0,
8056 ta_none
, offset
, 0, true);
8063 if (ebb
->ends_unreachable
)
8065 ebb_propose_action (ebb_table
, EBB_NO_ALIGN
, 0,
8066 ta_fill
, ebb
->end_offset
, 0, true);
8073 /* xgettext:c-format */
8074 (_("%pB(%pA+%#" PRIx64
"): could not decode instruction; "
8075 "possible configuration mismatch"),
8076 ebb
->sec
->owner
, ebb
->sec
, (uint64_t) offset
);
8081 /* After all of the information has collected about the
8082 transformations possible in an EBB, compute the appropriate actions
8083 here in compute_ebb_actions. We still must check later to make
8084 sure that the actions do not break any relocations. The algorithm
8085 used here is pretty greedy. Basically, it removes as many no-ops
8086 as possible so that the end of the EBB has the same alignment
8087 characteristics as the original. First, it uses narrowing, then
8088 fill space at the end of the EBB, and finally widenings. If that
8089 does not work, it tries again with one fewer no-op removed. The
8090 optimization will only be performed if all of the branch targets
8091 that were aligned before transformation are also aligned after the
8094 When the size_opt flag is set, ignore the branch target alignments,
8095 narrow all wide instructions, and remove all no-ops unless the end
8096 of the EBB prevents it. */
8099 compute_ebb_actions (ebb_constraint
*ebb_table
)
8103 int removed_bytes
= 0;
8104 ebb_t
*ebb
= &ebb_table
->ebb
;
8105 unsigned seg_idx_start
= 0;
8106 unsigned seg_idx_end
= 0;
8108 /* We perform this like the assembler relaxation algorithm: Start by
8109 assuming all instructions are narrow and all no-ops removed; then
8112 /* For each segment of this that has a solid constraint, check to
8113 see if there are any combinations that will keep the constraint.
8115 for (seg_idx_end
= 0; seg_idx_end
< ebb_table
->action_count
; seg_idx_end
++)
8117 bool requires_text_end_align
= false;
8118 unsigned longcall_count
= 0;
8119 unsigned longcall_convert_count
= 0;
8120 unsigned narrowable_count
= 0;
8121 unsigned narrowable_convert_count
= 0;
8122 unsigned widenable_count
= 0;
8123 unsigned widenable_convert_count
= 0;
8125 proposed_action
*action
= NULL
;
8126 int align
= (1 << ebb_table
->ebb
.sec
->alignment_power
);
8128 seg_idx_start
= seg_idx_end
;
8130 for (i
= seg_idx_start
; i
< ebb_table
->action_count
; i
++)
8132 action
= &ebb_table
->actions
[i
];
8133 if (action
->action
== ta_convert_longcall
)
8135 if (action
->action
== ta_narrow_insn
)
8137 if (action
->action
== ta_widen_insn
)
8139 if (action
->action
== ta_fill
)
8141 if (action
->align_type
== EBB_REQUIRE_LOOP_ALIGN
)
8143 if (action
->align_type
== EBB_REQUIRE_TGT_ALIGN
8144 && !elf32xtensa_size_opt
)
8149 if (seg_idx_end
== ebb_table
->action_count
&& !ebb
->ends_unreachable
)
8150 requires_text_end_align
= true;
8152 if (elf32xtensa_size_opt
&& !requires_text_end_align
8153 && action
->align_type
!= EBB_REQUIRE_LOOP_ALIGN
8154 && action
->align_type
!= EBB_REQUIRE_TGT_ALIGN
)
8156 longcall_convert_count
= longcall_count
;
8157 narrowable_convert_count
= narrowable_count
;
8158 widenable_convert_count
= 0;
8162 /* There is a constraint. Convert the max number of longcalls. */
8163 narrowable_convert_count
= 0;
8164 longcall_convert_count
= 0;
8165 widenable_convert_count
= 0;
8167 for (j
= 0; j
< longcall_count
; j
++)
8169 int removed
= (longcall_count
- j
) * 3 & (align
- 1);
8170 unsigned desire_narrow
= (align
- removed
) & (align
- 1);
8171 unsigned desire_widen
= removed
;
8172 if (desire_narrow
<= narrowable_count
)
8174 narrowable_convert_count
= desire_narrow
;
8175 narrowable_convert_count
+=
8176 (align
* ((narrowable_count
- narrowable_convert_count
)
8178 longcall_convert_count
= (longcall_count
- j
);
8179 widenable_convert_count
= 0;
8182 if (desire_widen
<= widenable_count
&& !elf32xtensa_size_opt
)
8184 narrowable_convert_count
= 0;
8185 longcall_convert_count
= longcall_count
- j
;
8186 widenable_convert_count
= desire_widen
;
8192 /* Now the number of conversions are saved. Do them. */
8193 for (i
= seg_idx_start
; i
< seg_idx_end
; i
++)
8195 action
= &ebb_table
->actions
[i
];
8196 switch (action
->action
)
8198 case ta_convert_longcall
:
8199 if (longcall_convert_count
!= 0)
8201 action
->action
= ta_remove_longcall
;
8202 action
->do_action
= true;
8203 action
->removed_bytes
+= 3;
8204 longcall_convert_count
--;
8207 case ta_narrow_insn
:
8208 if (narrowable_convert_count
!= 0)
8210 action
->do_action
= true;
8211 action
->removed_bytes
+= 1;
8212 narrowable_convert_count
--;
8216 if (widenable_convert_count
!= 0)
8218 action
->do_action
= true;
8219 action
->removed_bytes
-= 1;
8220 widenable_convert_count
--;
8229 /* Now we move on to some local opts. Try to remove each of the
8230 remaining longcalls. */
8232 if (ebb_table
->ebb
.ends_section
|| ebb_table
->ebb
.ends_unreachable
)
8235 for (i
= 0; i
< ebb_table
->action_count
; i
++)
8237 int old_removed_bytes
= removed_bytes
;
8238 proposed_action
*action
= &ebb_table
->actions
[i
];
8240 if (action
->do_action
&& action
->action
== ta_convert_longcall
)
8242 bool bad_alignment
= false;
8244 for (j
= i
+ 1; j
< ebb_table
->action_count
; j
++)
8246 proposed_action
*new_action
= &ebb_table
->actions
[j
];
8247 bfd_vma offset
= new_action
->offset
;
8248 if (new_action
->align_type
== EBB_REQUIRE_TGT_ALIGN
)
8250 if (!check_branch_target_aligned
8251 (ebb_table
->ebb
.contents
,
8252 ebb_table
->ebb
.content_length
,
8253 offset
, offset
- removed_bytes
))
8255 bad_alignment
= true;
8259 if (new_action
->align_type
== EBB_REQUIRE_LOOP_ALIGN
)
8261 if (!check_loop_aligned (ebb_table
->ebb
.contents
,
8262 ebb_table
->ebb
.content_length
,
8264 offset
- removed_bytes
))
8266 bad_alignment
= true;
8270 if (new_action
->action
== ta_narrow_insn
8271 && !new_action
->do_action
8272 && ebb_table
->ebb
.sec
->alignment_power
== 2)
8274 /* Narrow an instruction and we are done. */
8275 new_action
->do_action
= true;
8276 new_action
->removed_bytes
+= 1;
8277 bad_alignment
= false;
8280 if (new_action
->action
== ta_widen_insn
8281 && new_action
->do_action
8282 && ebb_table
->ebb
.sec
->alignment_power
== 2)
8284 /* Narrow an instruction and we are done. */
8285 new_action
->do_action
= false;
8286 new_action
->removed_bytes
+= 1;
8287 bad_alignment
= false;
8290 if (new_action
->do_action
)
8291 removed_bytes
+= new_action
->removed_bytes
;
8295 action
->removed_bytes
+= 3;
8296 action
->action
= ta_remove_longcall
;
8297 action
->do_action
= true;
8300 removed_bytes
= old_removed_bytes
;
8301 if (action
->do_action
)
8302 removed_bytes
+= action
->removed_bytes
;
8307 for (i
= 0; i
< ebb_table
->action_count
; ++i
)
8309 proposed_action
*action
= &ebb_table
->actions
[i
];
8310 if (action
->do_action
)
8311 removed_bytes
+= action
->removed_bytes
;
8314 if ((removed_bytes
% (1 << ebb_table
->ebb
.sec
->alignment_power
)) != 0
8315 && ebb
->ends_unreachable
)
8317 proposed_action
*action
;
8321 BFD_ASSERT (ebb_table
->action_count
!= 0);
8322 action
= &ebb_table
->actions
[ebb_table
->action_count
- 1];
8323 BFD_ASSERT (action
->action
== ta_fill
);
8324 BFD_ASSERT (ebb
->ends_unreachable
->flags
& XTENSA_PROP_UNREACHABLE
);
8326 extra_space
= xtensa_compute_fill_extra_space (ebb
->ends_unreachable
);
8327 br
= action
->removed_bytes
+ removed_bytes
+ extra_space
;
8328 br
= br
& ((1 << ebb
->sec
->alignment_power
) - 1);
8330 action
->removed_bytes
= extra_space
- br
;
8336 /* The xlate_map is a sorted array of address mappings designed to
8337 answer the offset_with_removed_text() query with a binary search instead
8338 of a linear search through the section's action_list. */
8340 typedef struct xlate_map_entry xlate_map_entry_t
;
8341 typedef struct xlate_map xlate_map_t
;
8343 struct xlate_map_entry
8345 bfd_vma orig_address
;
8346 bfd_vma new_address
;
8352 unsigned entry_count
;
8353 xlate_map_entry_t
*entry
;
8358 xlate_compare (const void *a_v
, const void *b_v
)
8360 const xlate_map_entry_t
*a
= (const xlate_map_entry_t
*) a_v
;
8361 const xlate_map_entry_t
*b
= (const xlate_map_entry_t
*) b_v
;
8362 if (a
->orig_address
< b
->orig_address
)
8364 if (a
->orig_address
> (b
->orig_address
+ b
->size
- 1))
8371 xlate_offset_with_removed_text (const xlate_map_t
*map
,
8372 text_action_list
*action_list
,
8376 xlate_map_entry_t
*e
;
8377 struct xlate_map_entry se
;
8380 return offset_with_removed_text (action_list
, offset
);
8382 if (map
->entry_count
== 0)
8385 se
.orig_address
= offset
;
8386 r
= bsearch (&se
, map
->entry
, map
->entry_count
,
8387 sizeof (xlate_map_entry_t
), &xlate_compare
);
8388 e
= (xlate_map_entry_t
*) r
;
8390 /* There could be a jump past the end of the section,
8391 allow it using the last xlate map entry to translate its address. */
8394 e
= map
->entry
+ map
->entry_count
- 1;
8395 if (xlate_compare (&se
, e
) <= 0)
8398 BFD_ASSERT (e
!= NULL
);
8401 return e
->new_address
- e
->orig_address
+ offset
;
8404 typedef struct xlate_map_context_struct xlate_map_context
;
8405 struct xlate_map_context_struct
8408 xlate_map_entry_t
*current_entry
;
8413 xlate_map_fn (splay_tree_node node
, void *p
)
8415 text_action
*r
= (text_action
*)node
->value
;
8416 xlate_map_context
*ctx
= p
;
8417 unsigned orig_size
= 0;
8422 case ta_remove_insn
:
8423 case ta_convert_longcall
:
8424 case ta_remove_literal
:
8425 case ta_add_literal
:
8427 case ta_remove_longcall
:
8430 case ta_narrow_insn
:
8439 ctx
->current_entry
->size
=
8440 r
->offset
+ orig_size
- ctx
->current_entry
->orig_address
;
8441 if (ctx
->current_entry
->size
!= 0)
8443 ctx
->current_entry
++;
8444 ctx
->map
->entry_count
++;
8446 ctx
->current_entry
->orig_address
= r
->offset
+ orig_size
;
8447 ctx
->removed
+= r
->removed_bytes
;
8448 ctx
->current_entry
->new_address
= r
->offset
+ orig_size
- ctx
->removed
;
8449 ctx
->current_entry
->size
= 0;
8453 /* Build a binary searchable offset translation map from a section's
8456 static xlate_map_t
*
8457 build_xlate_map (asection
*sec
, xtensa_relax_info
*relax_info
)
8459 text_action_list
*action_list
= &relax_info
->action_list
;
8460 unsigned num_actions
= 0;
8461 xlate_map_context ctx
;
8463 ctx
.map
= (xlate_map_t
*) bfd_malloc (sizeof (xlate_map_t
));
8465 if (ctx
.map
== NULL
)
8468 num_actions
= action_list_count (action_list
);
8469 ctx
.map
->entry
= (xlate_map_entry_t
*)
8470 bfd_malloc (sizeof (xlate_map_entry_t
) * (num_actions
+ 1));
8471 if (ctx
.map
->entry
== NULL
)
8476 ctx
.map
->entry_count
= 0;
8479 ctx
.current_entry
= &ctx
.map
->entry
[0];
8481 ctx
.current_entry
->orig_address
= 0;
8482 ctx
.current_entry
->new_address
= 0;
8483 ctx
.current_entry
->size
= 0;
8485 splay_tree_foreach (action_list
->tree
, xlate_map_fn
, &ctx
);
8487 ctx
.current_entry
->size
= (bfd_get_section_limit (sec
->owner
, sec
)
8488 - ctx
.current_entry
->orig_address
);
8489 if (ctx
.current_entry
->size
!= 0)
8490 ctx
.map
->entry_count
++;
8496 /* Free an offset translation map. */
8499 free_xlate_map (xlate_map_t
*map
)
8509 /* Use check_section_ebb_pcrels_fit to make sure that all of the
8510 relocations in a section will fit if a proposed set of actions
8514 check_section_ebb_pcrels_fit (bfd
*abfd
,
8517 Elf_Internal_Rela
*internal_relocs
,
8518 reloc_range_list
*relevant_relocs
,
8519 const ebb_constraint
*constraint
,
8520 const xtensa_opcode
*reloc_opcodes
)
8523 unsigned n
= sec
->reloc_count
;
8524 Elf_Internal_Rela
*irel
;
8525 xlate_map_t
*xmap
= NULL
;
8527 xtensa_relax_info
*relax_info
;
8528 reloc_range_list_entry
*entry
= NULL
;
8530 relax_info
= get_xtensa_relax_info (sec
);
8532 if (relax_info
&& sec
->reloc_count
> 100)
8534 xmap
= build_xlate_map (sec
, relax_info
);
8535 /* NULL indicates out of memory, but the slow version
8536 can still be used. */
8539 if (relevant_relocs
&& constraint
->action_count
)
8541 if (!relevant_relocs
->ok
)
8548 bfd_vma min_offset
, max_offset
;
8549 min_offset
= max_offset
= constraint
->actions
[0].offset
;
8551 for (i
= 1; i
< constraint
->action_count
; ++i
)
8553 proposed_action
*action
= &constraint
->actions
[i
];
8554 bfd_vma offset
= action
->offset
;
8556 if (offset
< min_offset
)
8557 min_offset
= offset
;
8558 if (offset
> max_offset
)
8559 max_offset
= offset
;
8561 reloc_range_list_update_range (relevant_relocs
, min_offset
,
8563 n
= relevant_relocs
->n_list
;
8564 entry
= &relevant_relocs
->list_root
;
8569 relevant_relocs
= NULL
;
8572 for (i
= 0; i
< n
; i
++)
8575 bfd_vma orig_self_offset
, orig_target_offset
;
8576 bfd_vma self_offset
, target_offset
;
8578 reloc_howto_type
*howto
;
8579 int self_removed_bytes
, target_removed_bytes
;
8581 if (relevant_relocs
)
8583 entry
= entry
->next
;
8588 irel
= internal_relocs
+ i
;
8590 r_type
= ELF32_R_TYPE (irel
->r_info
);
8592 howto
= &elf_howto_table
[r_type
];
8593 /* We maintain the required invariant: PC-relative relocations
8594 that fit before linking must fit after linking. Thus we only
8595 need to deal with relocations to the same section that are
8597 if (r_type
== R_XTENSA_ASM_SIMPLIFY
8598 || r_type
== R_XTENSA_32_PCREL
8599 || !howto
->pc_relative
)
8602 r_reloc_init (&r_rel
, abfd
, irel
, contents
,
8603 bfd_get_section_limit (abfd
, sec
));
8605 if (r_reloc_get_section (&r_rel
) != sec
)
8608 orig_self_offset
= irel
->r_offset
;
8609 orig_target_offset
= r_rel
.target_offset
;
8611 self_offset
= orig_self_offset
;
8612 target_offset
= orig_target_offset
;
8617 xlate_offset_with_removed_text (xmap
, &relax_info
->action_list
,
8620 xlate_offset_with_removed_text (xmap
, &relax_info
->action_list
,
8621 orig_target_offset
);
8624 self_removed_bytes
= 0;
8625 target_removed_bytes
= 0;
8627 for (j
= 0; j
< constraint
->action_count
; ++j
)
8629 proposed_action
*action
= &constraint
->actions
[j
];
8630 bfd_vma offset
= action
->offset
;
8631 int removed_bytes
= action
->removed_bytes
;
8632 if (offset
< orig_self_offset
8633 || (offset
== orig_self_offset
&& action
->action
== ta_fill
8634 && action
->removed_bytes
< 0))
8635 self_removed_bytes
+= removed_bytes
;
8636 if (offset
< orig_target_offset
8637 || (offset
== orig_target_offset
&& action
->action
== ta_fill
8638 && action
->removed_bytes
< 0))
8639 target_removed_bytes
+= removed_bytes
;
8641 self_offset
-= self_removed_bytes
;
8642 target_offset
-= target_removed_bytes
;
8644 /* Try to encode it. Get the operand and check. */
8645 if (is_alt_relocation (ELF32_R_TYPE (irel
->r_info
)))
8647 /* None of the current alternate relocs are PC-relative,
8648 and only PC-relative relocs matter here. */
8652 xtensa_opcode opcode
;
8655 if (relevant_relocs
)
8657 opcode
= entry
->opcode
;
8658 opnum
= entry
->opnum
;
8663 opcode
= reloc_opcodes
[relevant_relocs
?
8664 (unsigned)(entry
- relevant_relocs
->reloc
) : i
];
8666 opcode
= get_relocation_opcode (abfd
, sec
, contents
, irel
);
8667 if (opcode
== XTENSA_UNDEFINED
)
8673 opnum
= get_relocation_opnd (opcode
, ELF32_R_TYPE (irel
->r_info
));
8674 if (opnum
== XTENSA_UNDEFINED
)
8681 if (!pcrel_reloc_fits (opcode
, opnum
, self_offset
, target_offset
))
8689 free_xlate_map (xmap
);
8696 check_section_ebb_reduces (const ebb_constraint
*constraint
)
8701 for (i
= 0; i
< constraint
->action_count
; i
++)
8703 const proposed_action
*action
= &constraint
->actions
[i
];
8704 if (action
->do_action
)
8705 removed
+= action
->removed_bytes
;
8715 text_action_add_proposed (text_action_list
*l
,
8716 const ebb_constraint
*ebb_table
,
8721 for (i
= 0; i
< ebb_table
->action_count
; i
++)
8723 proposed_action
*action
= &ebb_table
->actions
[i
];
8725 if (!action
->do_action
)
8727 switch (action
->action
)
8729 case ta_remove_insn
:
8730 case ta_remove_longcall
:
8731 case ta_convert_longcall
:
8732 case ta_narrow_insn
:
8735 case ta_remove_literal
:
8736 text_action_add (l
, action
->action
, sec
, action
->offset
,
8737 action
->removed_bytes
);
8750 xtensa_compute_fill_extra_space (property_table_entry
*entry
)
8752 int fill_extra_space
;
8757 if ((entry
->flags
& XTENSA_PROP_UNREACHABLE
) == 0)
8760 fill_extra_space
= entry
->size
;
8761 if ((entry
->flags
& XTENSA_PROP_ALIGN
) != 0)
8763 /* Fill bytes for alignment:
8764 (2**n)-1 - (addr + (2**n)-1) & (2**n -1) */
8765 int pow
= GET_XTENSA_PROP_ALIGNMENT (entry
->flags
);
8766 int nsm
= (1 << pow
) - 1;
8767 bfd_vma addr
= entry
->address
+ entry
->size
;
8768 bfd_vma align_fill
= nsm
- ((addr
+ nsm
) & nsm
);
8769 fill_extra_space
+= align_fill
;
8771 return fill_extra_space
;
8775 /* First relaxation pass. */
8777 /* If the section contains relaxable literals, check each literal to
8778 see if it has the same value as another literal that has already
8779 been seen, either in the current section or a previous one. If so,
8780 add an entry to the per-section list of removed literals. The
8781 actual changes are deferred until the next pass. */
8784 compute_removed_literals (bfd
*abfd
,
8786 struct bfd_link_info
*link_info
,
8787 value_map_hash_table
*values
)
8789 xtensa_relax_info
*relax_info
;
8791 Elf_Internal_Rela
*internal_relocs
;
8792 source_reloc
*src_relocs
, *rel
;
8794 property_table_entry
*prop_table
= NULL
;
8797 bool last_loc_is_prev
= false;
8798 bfd_vma last_target_offset
= 0;
8799 section_cache_t target_sec_cache
;
8800 bfd_size_type sec_size
;
8802 init_section_cache (&target_sec_cache
);
8804 /* Do nothing if it is not a relaxable literal section. */
8805 relax_info
= get_xtensa_relax_info (sec
);
8806 BFD_ASSERT (relax_info
);
8807 if (!relax_info
->is_relaxable_literal_section
)
8810 internal_relocs
= retrieve_internal_relocs (abfd
, sec
,
8811 link_info
->keep_memory
);
8813 sec_size
= bfd_get_section_limit (abfd
, sec
);
8814 contents
= retrieve_contents (abfd
, sec
, link_info
->keep_memory
);
8815 if (contents
== NULL
&& sec_size
!= 0)
8821 /* Sort the source_relocs by target offset. */
8822 src_relocs
= relax_info
->src_relocs
;
8823 qsort (src_relocs
, relax_info
->src_count
,
8824 sizeof (source_reloc
), source_reloc_compare
);
8825 qsort (internal_relocs
, sec
->reloc_count
, sizeof (Elf_Internal_Rela
),
8826 internal_reloc_compare
);
8828 ptblsize
= xtensa_read_table_entries (abfd
, sec
, &prop_table
,
8829 XTENSA_PROP_SEC_NAME
, false);
8837 for (i
= 0; i
< relax_info
->src_count
; i
++)
8839 Elf_Internal_Rela
*irel
= NULL
;
8841 rel
= &src_relocs
[i
];
8842 if (get_l32r_opcode () != rel
->opcode
)
8844 irel
= get_irel_at_offset (sec
, internal_relocs
,
8845 rel
->r_rel
.target_offset
);
8847 /* If the relocation on this is not a simple R_XTENSA_32 or
8848 R_XTENSA_PLT then do not consider it. This may happen when
8849 the difference of two symbols is used in a literal. */
8850 if (irel
&& (ELF32_R_TYPE (irel
->r_info
) != R_XTENSA_32
8851 && ELF32_R_TYPE (irel
->r_info
) != R_XTENSA_PLT
))
8854 /* If the target_offset for this relocation is the same as the
8855 previous relocation, then we've already considered whether the
8856 literal can be coalesced. Skip to the next one.... */
8857 if (i
!= 0 && prev_i
!= -1
8858 && src_relocs
[i
-1].r_rel
.target_offset
== rel
->r_rel
.target_offset
)
8862 if (last_loc_is_prev
&&
8863 last_target_offset
+ 4 != rel
->r_rel
.target_offset
)
8864 last_loc_is_prev
= false;
8866 /* Check if the relocation was from an L32R that is being removed
8867 because a CALLX was converted to a direct CALL, and check if
8868 there are no other relocations to the literal. */
8869 if (is_removable_literal (rel
, i
, src_relocs
, relax_info
->src_count
,
8870 sec
, prop_table
, ptblsize
))
8872 if (!remove_dead_literal (abfd
, sec
, link_info
, internal_relocs
,
8873 irel
, rel
, prop_table
, ptblsize
))
8878 last_target_offset
= rel
->r_rel
.target_offset
;
8882 if (!identify_literal_placement (abfd
, sec
, contents
, link_info
,
8884 &last_loc_is_prev
, irel
,
8885 relax_info
->src_count
- i
, rel
,
8886 prop_table
, ptblsize
,
8887 &target_sec_cache
, rel
->is_abs_literal
))
8892 last_target_offset
= rel
->r_rel
.target_offset
;
8896 print_removed_literals (stderr
, &relax_info
->removed_list
);
8897 print_action_list (stderr
, &relax_info
->action_list
);
8902 free_section_cache (&target_sec_cache
);
8904 release_contents (sec
, contents
);
8905 release_internal_relocs (sec
, internal_relocs
);
8910 static Elf_Internal_Rela
*
8911 get_irel_at_offset (asection
*sec
,
8912 Elf_Internal_Rela
*internal_relocs
,
8916 Elf_Internal_Rela
*irel
;
8918 Elf_Internal_Rela key
;
8920 if (!internal_relocs
)
8923 key
.r_offset
= offset
;
8924 irel
= bsearch (&key
, internal_relocs
, sec
->reloc_count
,
8925 sizeof (Elf_Internal_Rela
), internal_reloc_matches
);
8929 /* bsearch does not guarantee which will be returned if there are
8930 multiple matches. We need the first that is not an alignment. */
8931 i
= irel
- internal_relocs
;
8934 if (internal_relocs
[i
-1].r_offset
!= offset
)
8938 for ( ; i
< sec
->reloc_count
; i
++)
8940 irel
= &internal_relocs
[i
];
8941 r_type
= ELF32_R_TYPE (irel
->r_info
);
8942 if (irel
->r_offset
== offset
&& r_type
!= R_XTENSA_NONE
)
8951 is_removable_literal (const source_reloc
*rel
,
8953 const source_reloc
*src_relocs
,
8956 property_table_entry
*prop_table
,
8959 const source_reloc
*curr_rel
;
8960 property_table_entry
*entry
;
8965 entry
= elf_xtensa_find_property_entry (prop_table
, ptblsize
,
8966 sec
->vma
+ rel
->r_rel
.target_offset
);
8967 if (entry
&& (entry
->flags
& XTENSA_PROP_NO_TRANSFORM
))
8970 for (++i
; i
< src_count
; ++i
)
8972 curr_rel
= &src_relocs
[i
];
8973 /* If all others have the same target offset.... */
8974 if (curr_rel
->r_rel
.target_offset
!= rel
->r_rel
.target_offset
)
8977 if (!curr_rel
->is_null
8978 && !xtensa_is_property_section (curr_rel
->source_sec
)
8979 && !(curr_rel
->source_sec
->flags
& SEC_DEBUGGING
))
8987 remove_dead_literal (bfd
*abfd
,
8989 struct bfd_link_info
*link_info
,
8990 Elf_Internal_Rela
*internal_relocs
,
8991 Elf_Internal_Rela
*irel
,
8993 property_table_entry
*prop_table
,
8996 property_table_entry
*entry
;
8997 xtensa_relax_info
*relax_info
;
8999 relax_info
= get_xtensa_relax_info (sec
);
9003 entry
= elf_xtensa_find_property_entry (prop_table
, ptblsize
,
9004 sec
->vma
+ rel
->r_rel
.target_offset
);
9006 /* Mark the unused literal so that it will be removed. */
9007 add_removed_literal (&relax_info
->removed_list
, &rel
->r_rel
, NULL
);
9009 text_action_add (&relax_info
->action_list
,
9010 ta_remove_literal
, sec
, rel
->r_rel
.target_offset
, 4);
9012 /* If the section is 4-byte aligned, do not add fill. */
9013 if (sec
->alignment_power
> 2)
9015 int fill_extra_space
;
9016 bfd_vma entry_sec_offset
;
9018 property_table_entry
*the_add_entry
;
9022 entry_sec_offset
= entry
->address
- sec
->vma
+ entry
->size
;
9024 entry_sec_offset
= rel
->r_rel
.target_offset
+ 4;
9026 /* If the literal range is at the end of the section,
9028 the_add_entry
= elf_xtensa_find_property_entry (prop_table
, ptblsize
,
9030 fill_extra_space
= xtensa_compute_fill_extra_space (the_add_entry
);
9032 fa
= find_fill_action (&relax_info
->action_list
, sec
, entry_sec_offset
);
9033 removed_diff
= compute_removed_action_diff (fa
, sec
, entry_sec_offset
,
9034 -4, fill_extra_space
);
9036 adjust_fill_action (fa
, removed_diff
);
9038 text_action_add (&relax_info
->action_list
,
9039 ta_fill
, sec
, entry_sec_offset
, removed_diff
);
9042 /* Zero out the relocation on this literal location. */
9045 if (elf_hash_table (link_info
)->dynamic_sections_created
)
9046 shrink_dynamic_reloc_sections (link_info
, abfd
, sec
, irel
);
9048 irel
->r_info
= ELF32_R_INFO (0, R_XTENSA_NONE
);
9049 pin_internal_relocs (sec
, internal_relocs
);
9052 /* Do not modify "last_loc_is_prev". */
9058 identify_literal_placement (bfd
*abfd
,
9061 struct bfd_link_info
*link_info
,
9062 value_map_hash_table
*values
,
9063 bool *last_loc_is_prev_p
,
9064 Elf_Internal_Rela
*irel
,
9065 int remaining_src_rels
,
9067 property_table_entry
*prop_table
,
9069 section_cache_t
*target_sec_cache
,
9070 bool is_abs_literal
)
9074 xtensa_relax_info
*relax_info
;
9075 bool literal_placed
= false;
9077 unsigned long value
;
9078 bool final_static_link
;
9079 bfd_size_type sec_size
;
9081 relax_info
= get_xtensa_relax_info (sec
);
9085 sec_size
= bfd_get_section_limit (abfd
, sec
);
9088 (!bfd_link_relocatable (link_info
)
9089 && !elf_hash_table (link_info
)->dynamic_sections_created
);
9091 /* The placement algorithm first checks to see if the literal is
9092 already in the value map. If so and the value map is reachable
9093 from all uses, then the literal is moved to that location. If
9094 not, then we identify the last location where a fresh literal was
9095 placed. If the literal can be safely moved there, then we do so.
9096 If not, then we assume that the literal is not to move and leave
9097 the literal where it is, marking it as the last literal
9100 /* Find the literal value. */
9102 r_reloc_init (&r_rel
, abfd
, irel
, contents
, sec_size
);
9105 BFD_ASSERT (rel
->r_rel
.target_offset
< sec_size
);
9106 value
= bfd_get_32 (abfd
, contents
+ rel
->r_rel
.target_offset
);
9108 init_literal_value (&val
, &r_rel
, value
, is_abs_literal
);
9110 /* Check if we've seen another literal with the same value that
9111 is in the same output section. */
9112 val_map
= value_map_get_cached_value (values
, &val
, final_static_link
);
9115 && (r_reloc_get_section (&val_map
->loc
)->output_section
9116 == sec
->output_section
)
9117 && relocations_reach (rel
, remaining_src_rels
, &val_map
->loc
)
9118 && coalesce_shared_literal (sec
, rel
, prop_table
, ptblsize
, val_map
))
9120 /* No change to last_loc_is_prev. */
9121 literal_placed
= true;
9124 /* For relocatable links, do not try to move literals. To do it
9125 correctly might increase the number of relocations in an input
9126 section making the default relocatable linking fail. */
9127 if (!bfd_link_relocatable (link_info
) && !literal_placed
9128 && values
->has_last_loc
&& !(*last_loc_is_prev_p
))
9130 asection
*target_sec
= r_reloc_get_section (&values
->last_loc
);
9131 if (target_sec
&& target_sec
->output_section
== sec
->output_section
)
9133 /* Increment the virtual offset. */
9134 r_reloc try_loc
= values
->last_loc
;
9135 try_loc
.virtual_offset
+= 4;
9137 /* There is a last loc that was in the same output section. */
9138 if (relocations_reach (rel
, remaining_src_rels
, &try_loc
)
9139 && move_shared_literal (sec
, link_info
, rel
,
9140 prop_table
, ptblsize
,
9141 &try_loc
, &val
, target_sec_cache
))
9143 values
->last_loc
.virtual_offset
+= 4;
9144 literal_placed
= true;
9146 val_map
= add_value_map (values
, &val
, &try_loc
,
9149 val_map
->loc
= try_loc
;
9154 if (!literal_placed
)
9156 /* Nothing worked, leave the literal alone but update the last loc. */
9157 values
->has_last_loc
= true;
9158 values
->last_loc
= rel
->r_rel
;
9160 val_map
= add_value_map (values
, &val
, &rel
->r_rel
, final_static_link
);
9162 val_map
->loc
= rel
->r_rel
;
9163 *last_loc_is_prev_p
= true;
9170 /* Check if the original relocations (presumably on L32R instructions)
9171 identified by reloc[0..N] can be changed to reference the literal
9172 identified by r_rel. If r_rel is out of range for any of the
9173 original relocations, then we don't want to coalesce the original
9174 literal with the one at r_rel. We only check reloc[0..N], where the
9175 offsets are all the same as for reloc[0] (i.e., they're all
9176 referencing the same literal) and where N is also bounded by the
9177 number of remaining entries in the "reloc" array. The "reloc" array
9178 is sorted by target offset so we know all the entries for the same
9179 literal will be contiguous. */
9182 relocations_reach (source_reloc
*reloc
,
9183 int remaining_relocs
,
9184 const r_reloc
*r_rel
)
9186 bfd_vma from_offset
, source_address
, dest_address
;
9190 if (!r_reloc_is_defined (r_rel
))
9193 sec
= r_reloc_get_section (r_rel
);
9194 from_offset
= reloc
[0].r_rel
.target_offset
;
9196 for (i
= 0; i
< remaining_relocs
; i
++)
9198 if (reloc
[i
].r_rel
.target_offset
!= from_offset
)
9201 /* Ignore relocations that have been removed. */
9202 if (reloc
[i
].is_null
)
9205 /* The original and new output section for these must be the same
9206 in order to coalesce. */
9207 if (r_reloc_get_section (&reloc
[i
].r_rel
)->output_section
9208 != sec
->output_section
)
9211 /* Absolute literals in the same output section can always be
9213 if (reloc
[i
].is_abs_literal
)
9216 /* A literal with no PC-relative relocations can be moved anywhere. */
9217 if (reloc
[i
].opnd
!= -1)
9219 /* Otherwise, check to see that it fits. */
9220 source_address
= (reloc
[i
].source_sec
->output_section
->vma
9221 + reloc
[i
].source_sec
->output_offset
9222 + reloc
[i
].r_rel
.rela
.r_offset
);
9223 dest_address
= (sec
->output_section
->vma
9224 + sec
->output_offset
9225 + r_rel
->target_offset
);
9227 if (!pcrel_reloc_fits (reloc
[i
].opcode
, reloc
[i
].opnd
,
9228 source_address
, dest_address
))
9237 /* Move a literal to another literal location because it is
9238 the same as the other literal value. */
9241 coalesce_shared_literal (asection
*sec
,
9243 property_table_entry
*prop_table
,
9247 property_table_entry
*entry
;
9249 property_table_entry
*the_add_entry
;
9251 xtensa_relax_info
*relax_info
;
9253 relax_info
= get_xtensa_relax_info (sec
);
9257 entry
= elf_xtensa_find_property_entry
9258 (prop_table
, ptblsize
, sec
->vma
+ rel
->r_rel
.target_offset
);
9259 if (entry
&& (entry
->flags
& XTENSA_PROP_NO_TRANSFORM
))
9262 /* Mark that the literal will be coalesced. */
9263 add_removed_literal (&relax_info
->removed_list
, &rel
->r_rel
, &val_map
->loc
);
9265 text_action_add (&relax_info
->action_list
,
9266 ta_remove_literal
, sec
, rel
->r_rel
.target_offset
, 4);
9268 /* If the section is 4-byte aligned, do not add fill. */
9269 if (sec
->alignment_power
> 2)
9271 int fill_extra_space
;
9272 bfd_vma entry_sec_offset
;
9275 entry_sec_offset
= entry
->address
- sec
->vma
+ entry
->size
;
9277 entry_sec_offset
= rel
->r_rel
.target_offset
+ 4;
9279 /* If the literal range is at the end of the section,
9281 fill_extra_space
= 0;
9282 the_add_entry
= elf_xtensa_find_property_entry (prop_table
, ptblsize
,
9284 if (the_add_entry
&& (the_add_entry
->flags
& XTENSA_PROP_UNREACHABLE
))
9285 fill_extra_space
= the_add_entry
->size
;
9287 fa
= find_fill_action (&relax_info
->action_list
, sec
, entry_sec_offset
);
9288 removed_diff
= compute_removed_action_diff (fa
, sec
, entry_sec_offset
,
9289 -4, fill_extra_space
);
9291 adjust_fill_action (fa
, removed_diff
);
9293 text_action_add (&relax_info
->action_list
,
9294 ta_fill
, sec
, entry_sec_offset
, removed_diff
);
9301 /* Move a literal to another location. This may actually increase the
9302 total amount of space used because of alignments so we need to do
9303 this carefully. Also, it may make a branch go out of range. */
9306 move_shared_literal (asection
*sec
,
9307 struct bfd_link_info
*link_info
,
9309 property_table_entry
*prop_table
,
9311 const r_reloc
*target_loc
,
9312 const literal_value
*lit_value
,
9313 section_cache_t
*target_sec_cache
)
9315 property_table_entry
*the_add_entry
, *src_entry
, *target_entry
= NULL
;
9316 text_action
*fa
, *target_fa
;
9318 xtensa_relax_info
*relax_info
, *target_relax_info
;
9319 asection
*target_sec
;
9321 ebb_constraint ebb_table
;
9324 /* If this routine always returns FALSE, the literals that cannot be
9325 coalesced will not be moved. */
9326 if (elf32xtensa_no_literal_movement
)
9329 relax_info
= get_xtensa_relax_info (sec
);
9333 target_sec
= r_reloc_get_section (target_loc
);
9334 target_relax_info
= get_xtensa_relax_info (target_sec
);
9336 /* Literals to undefined sections may not be moved because they
9337 must report an error. */
9338 if (bfd_is_und_section (target_sec
))
9341 src_entry
= elf_xtensa_find_property_entry
9342 (prop_table
, ptblsize
, sec
->vma
+ rel
->r_rel
.target_offset
);
9344 if (!section_cache_section (target_sec_cache
, target_sec
, link_info
))
9347 target_entry
= elf_xtensa_find_property_entry
9348 (target_sec_cache
->ptbl
, target_sec_cache
->pte_count
,
9349 target_sec
->vma
+ target_loc
->target_offset
);
9354 /* Make sure that we have not broken any branches. */
9357 init_ebb_constraint (&ebb_table
);
9358 ebb
= &ebb_table
.ebb
;
9359 init_ebb (ebb
, target_sec_cache
->sec
, target_sec_cache
->contents
,
9360 target_sec_cache
->content_length
,
9361 target_sec_cache
->ptbl
, target_sec_cache
->pte_count
,
9362 target_sec_cache
->relocs
, target_sec_cache
->reloc_count
);
9364 /* Propose to add 4 bytes + worst-case alignment size increase to
9366 ebb_propose_action (&ebb_table
, EBB_NO_ALIGN
, 0,
9367 ta_fill
, target_loc
->target_offset
,
9368 -4 - (1 << target_sec
->alignment_power
), true);
9370 /* Check all of the PC-relative relocations to make sure they still fit. */
9371 relocs_fit
= check_section_ebb_pcrels_fit (target_sec
->owner
, target_sec
,
9372 target_sec_cache
->contents
,
9373 target_sec_cache
->relocs
, NULL
,
9379 text_action_add_literal (&target_relax_info
->action_list
,
9380 ta_add_literal
, target_loc
, lit_value
, -4);
9382 if (target_sec
->alignment_power
> 2 && target_entry
!= src_entry
)
9384 /* May need to add or remove some fill to maintain alignment. */
9385 int fill_extra_space
;
9386 bfd_vma entry_sec_offset
;
9389 target_entry
->address
- target_sec
->vma
+ target_entry
->size
;
9391 /* If the literal range is at the end of the section,
9393 fill_extra_space
= 0;
9395 elf_xtensa_find_property_entry (target_sec_cache
->ptbl
,
9396 target_sec_cache
->pte_count
,
9398 if (the_add_entry
&& (the_add_entry
->flags
& XTENSA_PROP_UNREACHABLE
))
9399 fill_extra_space
= the_add_entry
->size
;
9401 target_fa
= find_fill_action (&target_relax_info
->action_list
,
9402 target_sec
, entry_sec_offset
);
9403 removed_diff
= compute_removed_action_diff (target_fa
, target_sec
,
9404 entry_sec_offset
, 4,
9407 adjust_fill_action (target_fa
, removed_diff
);
9409 text_action_add (&target_relax_info
->action_list
,
9410 ta_fill
, target_sec
, entry_sec_offset
, removed_diff
);
9413 /* Mark that the literal will be moved to the new location. */
9414 add_removed_literal (&relax_info
->removed_list
, &rel
->r_rel
, target_loc
);
9416 /* Remove the literal. */
9417 text_action_add (&relax_info
->action_list
,
9418 ta_remove_literal
, sec
, rel
->r_rel
.target_offset
, 4);
9420 /* If the section is 4-byte aligned, do not add fill. */
9421 if (sec
->alignment_power
> 2 && target_entry
!= src_entry
)
9423 int fill_extra_space
;
9424 bfd_vma entry_sec_offset
;
9427 entry_sec_offset
= src_entry
->address
- sec
->vma
+ src_entry
->size
;
9429 entry_sec_offset
= rel
->r_rel
.target_offset
+4;
9431 /* If the literal range is at the end of the section,
9433 fill_extra_space
= 0;
9434 the_add_entry
= elf_xtensa_find_property_entry (prop_table
, ptblsize
,
9436 if (the_add_entry
&& (the_add_entry
->flags
& XTENSA_PROP_UNREACHABLE
))
9437 fill_extra_space
= the_add_entry
->size
;
9439 fa
= find_fill_action (&relax_info
->action_list
, sec
, entry_sec_offset
);
9440 removed_diff
= compute_removed_action_diff (fa
, sec
, entry_sec_offset
,
9441 -4, fill_extra_space
);
9443 adjust_fill_action (fa
, removed_diff
);
9445 text_action_add (&relax_info
->action_list
,
9446 ta_fill
, sec
, entry_sec_offset
, removed_diff
);
9453 /* Second relaxation pass. */
9456 action_remove_bytes_fn (splay_tree_node node
, void *p
)
9458 bfd_size_type
*final_size
= p
;
9459 text_action
*action
= (text_action
*)node
->value
;
9461 *final_size
-= action
->removed_bytes
;
9465 /* Modify all of the relocations to point to the right spot, and if this
9466 is a relaxable section, delete the unwanted literals and fix the
9470 relax_section (bfd
*abfd
, asection
*sec
, struct bfd_link_info
*link_info
)
9472 Elf_Internal_Rela
*internal_relocs
;
9473 xtensa_relax_info
*relax_info
;
9478 bool virtual_action
;
9479 bfd_size_type sec_size
;
9481 sec_size
= bfd_get_section_limit (abfd
, sec
);
9482 relax_info
= get_xtensa_relax_info (sec
);
9483 BFD_ASSERT (relax_info
);
9485 /* First translate any of the fixes that have been added already. */
9486 translate_section_fixes (sec
);
9488 /* Handle property sections (e.g., literal tables) specially. */
9489 if (xtensa_is_property_section (sec
))
9491 BFD_ASSERT (!relax_info
->is_relaxable_literal_section
);
9492 return relax_property_section (abfd
, sec
, link_info
);
9495 internal_relocs
= retrieve_internal_relocs (abfd
, sec
,
9496 link_info
->keep_memory
);
9497 if (!internal_relocs
&& !action_list_count (&relax_info
->action_list
))
9500 contents
= retrieve_contents (abfd
, sec
, link_info
->keep_memory
);
9501 if (contents
== NULL
&& sec_size
!= 0)
9507 if (internal_relocs
)
9509 for (i
= 0; i
< sec
->reloc_count
; i
++)
9511 Elf_Internal_Rela
*irel
;
9512 xtensa_relax_info
*target_relax_info
;
9513 bfd_vma source_offset
, old_source_offset
;
9516 asection
*target_sec
;
9518 /* Locally change the source address.
9519 Translate the target to the new target address.
9520 If it points to this section and has been removed,
9524 irel
= &internal_relocs
[i
];
9525 source_offset
= irel
->r_offset
;
9526 old_source_offset
= source_offset
;
9528 r_type
= ELF32_R_TYPE (irel
->r_info
);
9529 r_reloc_init (&r_rel
, abfd
, irel
, contents
,
9530 bfd_get_section_limit (abfd
, sec
));
9532 /* If this section could have changed then we may need to
9533 change the relocation's offset. */
9535 if (relax_info
->is_relaxable_literal_section
9536 || relax_info
->is_relaxable_asm_section
)
9538 pin_internal_relocs (sec
, internal_relocs
);
9540 if (r_type
!= R_XTENSA_NONE
9541 && find_removed_literal (&relax_info
->removed_list
,
9544 /* Remove this relocation. */
9545 if (elf_hash_table (link_info
)->dynamic_sections_created
)
9546 shrink_dynamic_reloc_sections (link_info
, abfd
, sec
, irel
);
9547 irel
->r_info
= ELF32_R_INFO (0, R_XTENSA_NONE
);
9548 irel
->r_offset
= offset_with_removed_text_map
9549 (&relax_info
->action_list
, irel
->r_offset
);
9553 if (r_type
== R_XTENSA_ASM_SIMPLIFY
)
9555 text_action
*action
=
9556 find_insn_action (&relax_info
->action_list
,
9558 if (action
&& (action
->action
== ta_convert_longcall
9559 || action
->action
== ta_remove_longcall
))
9561 bfd_reloc_status_type retval
;
9562 char *error_message
= NULL
;
9564 retval
= contract_asm_expansion (contents
, sec_size
,
9565 irel
, &error_message
);
9566 if (retval
!= bfd_reloc_ok
)
9568 (*link_info
->callbacks
->reloc_dangerous
)
9569 (link_info
, error_message
, abfd
, sec
,
9573 /* Update the action so that the code that moves
9574 the contents will do the right thing. */
9575 /* ta_remove_longcall and ta_remove_insn actions are
9576 grouped together in the tree as well as
9577 ta_convert_longcall and ta_none, so that changes below
9578 can be done w/o removing and reinserting action into
9581 if (action
->action
== ta_remove_longcall
)
9582 action
->action
= ta_remove_insn
;
9584 action
->action
= ta_none
;
9585 /* Refresh the info in the r_rel. */
9586 r_reloc_init (&r_rel
, abfd
, irel
, contents
, sec_size
);
9587 r_type
= ELF32_R_TYPE (irel
->r_info
);
9591 source_offset
= offset_with_removed_text_map
9592 (&relax_info
->action_list
, irel
->r_offset
);
9593 irel
->r_offset
= source_offset
;
9596 /* If the target section could have changed then
9597 we may need to change the relocation's target offset. */
9599 target_sec
= r_reloc_get_section (&r_rel
);
9601 /* For a reference to a discarded section from a DWARF section,
9602 i.e., where action_discarded is PRETEND, the symbol will
9603 eventually be modified to refer to the kept section (at least if
9604 the kept and discarded sections are the same size). Anticipate
9605 that here and adjust things accordingly. */
9606 if (! elf_xtensa_ignore_discarded_relocs (sec
)
9607 && elf_xtensa_action_discarded (sec
) == PRETEND
9608 && sec
->sec_info_type
!= SEC_INFO_TYPE_STABS
9609 && target_sec
!= NULL
9610 && discarded_section (target_sec
))
9612 /* It would be natural to call _bfd_elf_check_kept_section
9613 here, but it's not exported from elflink.c. It's also a
9614 fairly expensive check. Adjusting the relocations to the
9615 discarded section is fairly harmless; it will only adjust
9616 some addends and difference values. If it turns out that
9617 _bfd_elf_check_kept_section fails later, it won't matter,
9618 so just compare the section names to find the right group
9620 asection
*kept
= target_sec
->kept_section
;
9623 if ((kept
->flags
& SEC_GROUP
) != 0)
9625 asection
*first
= elf_next_in_group (kept
);
9626 asection
*s
= first
;
9631 if (strcmp (s
->name
, target_sec
->name
) == 0)
9636 s
= elf_next_in_group (s
);
9643 && ((target_sec
->rawsize
!= 0
9644 ? target_sec
->rawsize
: target_sec
->size
)
9645 == (kept
->rawsize
!= 0 ? kept
->rawsize
: kept
->size
)))
9649 target_relax_info
= get_xtensa_relax_info (target_sec
);
9650 if (target_relax_info
9651 && (target_relax_info
->is_relaxable_literal_section
9652 || target_relax_info
->is_relaxable_asm_section
))
9655 target_sec
= translate_reloc (&r_rel
, &new_reloc
, target_sec
);
9657 if (r_type
== R_XTENSA_DIFF8
9658 || r_type
== R_XTENSA_DIFF16
9659 || r_type
== R_XTENSA_DIFF32
9660 || r_type
== R_XTENSA_PDIFF8
9661 || r_type
== R_XTENSA_PDIFF16
9662 || r_type
== R_XTENSA_PDIFF32
9663 || r_type
== R_XTENSA_NDIFF8
9664 || r_type
== R_XTENSA_NDIFF16
9665 || r_type
== R_XTENSA_NDIFF32
)
9667 bfd_signed_vma diff_value
= 0;
9668 bfd_vma new_end_offset
, diff_mask
= 0;
9670 if (bfd_get_section_limit (abfd
, sec
) < old_source_offset
)
9672 (*link_info
->callbacks
->reloc_dangerous
)
9673 (link_info
, _("invalid relocation address"),
9674 abfd
, sec
, old_source_offset
);
9680 case R_XTENSA_DIFF8
:
9683 bfd_get_signed_8 (abfd
, &contents
[old_source_offset
]);
9685 case R_XTENSA_DIFF16
:
9688 bfd_get_signed_16 (abfd
, &contents
[old_source_offset
]);
9690 case R_XTENSA_DIFF32
:
9691 diff_mask
= 0x7fffffff;
9693 bfd_get_signed_32 (abfd
, &contents
[old_source_offset
]);
9695 case R_XTENSA_PDIFF8
:
9696 case R_XTENSA_NDIFF8
:
9699 bfd_get_8 (abfd
, &contents
[old_source_offset
]);
9701 case R_XTENSA_PDIFF16
:
9702 case R_XTENSA_NDIFF16
:
9705 bfd_get_16 (abfd
, &contents
[old_source_offset
]);
9707 case R_XTENSA_PDIFF32
:
9708 case R_XTENSA_NDIFF32
:
9709 diff_mask
= 0xffffffff;
9711 bfd_get_32 (abfd
, &contents
[old_source_offset
]);
9715 if (r_type
>= R_XTENSA_NDIFF8
9716 && r_type
<= R_XTENSA_NDIFF32
9718 diff_value
|= ~diff_mask
;
9720 new_end_offset
= offset_with_removed_text_map
9721 (&target_relax_info
->action_list
,
9722 r_rel
.target_offset
+ diff_value
);
9723 diff_value
= new_end_offset
- new_reloc
.target_offset
;
9727 case R_XTENSA_DIFF8
:
9728 bfd_put_signed_8 (abfd
, diff_value
,
9729 &contents
[old_source_offset
]);
9731 case R_XTENSA_DIFF16
:
9732 bfd_put_signed_16 (abfd
, diff_value
,
9733 &contents
[old_source_offset
]);
9735 case R_XTENSA_DIFF32
:
9736 bfd_put_signed_32 (abfd
, diff_value
,
9737 &contents
[old_source_offset
]);
9739 case R_XTENSA_PDIFF8
:
9740 case R_XTENSA_NDIFF8
:
9741 bfd_put_8 (abfd
, diff_value
,
9742 &contents
[old_source_offset
]);
9744 case R_XTENSA_PDIFF16
:
9745 case R_XTENSA_NDIFF16
:
9746 bfd_put_16 (abfd
, diff_value
,
9747 &contents
[old_source_offset
]);
9749 case R_XTENSA_PDIFF32
:
9750 case R_XTENSA_NDIFF32
:
9751 bfd_put_32 (abfd
, diff_value
,
9752 &contents
[old_source_offset
]);
9756 /* Check for overflow. Sign bits must be all zeroes or
9757 all ones. When sign bits are all ones diff_value
9759 if (((diff_value
& ~diff_mask
) != 0
9760 && (diff_value
& ~diff_mask
) != ~diff_mask
)
9761 || (diff_value
&& (bfd_vma
) diff_value
== ~diff_mask
))
9763 (*link_info
->callbacks
->reloc_dangerous
)
9764 (link_info
, _("overflow after relaxation"),
9765 abfd
, sec
, old_source_offset
);
9769 pin_contents (sec
, contents
);
9772 /* If the relocation still references a section in the same
9773 input file, modify the relocation directly instead of
9774 adding a "fix" record. */
9775 if (target_sec
->owner
== abfd
)
9777 unsigned r_symndx
= ELF32_R_SYM (new_reloc
.rela
.r_info
);
9778 irel
->r_info
= ELF32_R_INFO (r_symndx
, r_type
);
9779 irel
->r_addend
= new_reloc
.rela
.r_addend
;
9780 pin_internal_relocs (sec
, internal_relocs
);
9784 bfd_vma addend_displacement
;
9787 addend_displacement
=
9788 new_reloc
.target_offset
+ new_reloc
.virtual_offset
;
9789 fix
= reloc_bfd_fix_init (sec
, source_offset
, r_type
,
9791 addend_displacement
, true);
9798 if ((relax_info
->is_relaxable_literal_section
9799 || relax_info
->is_relaxable_asm_section
)
9800 && action_list_count (&relax_info
->action_list
))
9802 /* Walk through the planned actions and build up a table
9803 of move, copy and fill records. Use the move, copy and
9804 fill records to perform the actions once. */
9806 bfd_size_type final_size
, copy_size
, orig_insn_size
;
9807 bfd_byte
*scratch
= NULL
;
9808 bfd_byte
*dup_contents
= NULL
;
9809 bfd_size_type orig_size
= sec
->size
;
9810 bfd_vma orig_dot
= 0;
9811 bfd_vma orig_dot_copied
= 0; /* Byte copied already from
9812 orig dot in physical memory. */
9813 bfd_vma orig_dot_vo
= 0; /* Virtual offset from orig_dot. */
9814 bfd_vma dup_dot
= 0;
9816 text_action
*action
;
9818 final_size
= sec
->size
;
9820 splay_tree_foreach (relax_info
->action_list
.tree
,
9821 action_remove_bytes_fn
, &final_size
);
9822 scratch
= (bfd_byte
*) bfd_zmalloc (final_size
);
9823 dup_contents
= (bfd_byte
*) bfd_zmalloc (final_size
);
9825 /* The dot is the current fill location. */
9827 print_action_list (stderr
, &relax_info
->action_list
);
9830 for (action
= action_first (&relax_info
->action_list
); action
;
9831 action
= action_next (&relax_info
->action_list
, action
))
9833 virtual_action
= false;
9834 if (action
->offset
> orig_dot
)
9836 orig_dot
+= orig_dot_copied
;
9837 orig_dot_copied
= 0;
9839 /* Out of the virtual world. */
9842 if (action
->offset
> orig_dot
)
9844 copy_size
= action
->offset
- orig_dot
;
9845 memmove (&dup_contents
[dup_dot
], &contents
[orig_dot
], copy_size
);
9846 orig_dot
+= copy_size
;
9847 dup_dot
+= copy_size
;
9848 BFD_ASSERT (action
->offset
== orig_dot
);
9850 else if (action
->offset
< orig_dot
)
9852 if (action
->action
== ta_fill
9853 && action
->offset
- action
->removed_bytes
== orig_dot
)
9855 /* This is OK because the fill only effects the dup_dot. */
9857 else if (action
->action
== ta_add_literal
)
9859 /* TBD. Might need to handle this. */
9862 if (action
->offset
== orig_dot
)
9864 if (action
->virtual_offset
> orig_dot_vo
)
9866 if (orig_dot_vo
== 0)
9868 /* Need to copy virtual_offset bytes. Probably four. */
9869 copy_size
= action
->virtual_offset
- orig_dot_vo
;
9870 memmove (&dup_contents
[dup_dot
],
9871 &contents
[orig_dot
], copy_size
);
9872 orig_dot_copied
= copy_size
;
9873 dup_dot
+= copy_size
;
9875 virtual_action
= true;
9878 BFD_ASSERT (action
->virtual_offset
<= orig_dot_vo
);
9880 switch (action
->action
)
9882 case ta_remove_literal
:
9883 case ta_remove_insn
:
9884 BFD_ASSERT (action
->removed_bytes
>= 0);
9885 orig_dot
+= action
->removed_bytes
;
9888 case ta_narrow_insn
:
9891 memmove (scratch
, &contents
[orig_dot
], orig_insn_size
);
9892 BFD_ASSERT (action
->removed_bytes
== 1);
9893 rv
= narrow_instruction (scratch
, final_size
, 0);
9895 memmove (&dup_contents
[dup_dot
], scratch
, copy_size
);
9896 orig_dot
+= orig_insn_size
;
9897 dup_dot
+= copy_size
;
9901 if (action
->removed_bytes
>= 0)
9902 orig_dot
+= action
->removed_bytes
;
9905 /* Already zeroed in dup_contents. Just bump the
9907 dup_dot
+= (-action
->removed_bytes
);
9912 BFD_ASSERT (action
->removed_bytes
== 0);
9915 case ta_convert_longcall
:
9916 case ta_remove_longcall
:
9917 /* These will be removed or converted before we get here. */
9924 memmove (scratch
, &contents
[orig_dot
], orig_insn_size
);
9925 BFD_ASSERT (action
->removed_bytes
== -1);
9926 rv
= widen_instruction (scratch
, final_size
, 0);
9928 memmove (&dup_contents
[dup_dot
], scratch
, copy_size
);
9929 orig_dot
+= orig_insn_size
;
9930 dup_dot
+= copy_size
;
9933 case ta_add_literal
:
9936 BFD_ASSERT (action
->removed_bytes
== -4);
9937 /* TBD -- place the literal value here and insert
9939 memset (&dup_contents
[dup_dot
], 0, 4);
9940 pin_internal_relocs (sec
, internal_relocs
);
9941 pin_contents (sec
, contents
);
9943 if (!move_literal (abfd
, link_info
, sec
, dup_dot
, dup_contents
,
9944 relax_info
, &internal_relocs
, &action
->value
))
9948 orig_dot_vo
+= copy_size
;
9950 orig_dot
+= orig_insn_size
;
9951 dup_dot
+= copy_size
;
9955 /* Not implemented yet. */
9960 BFD_ASSERT (dup_dot
<= final_size
);
9961 BFD_ASSERT (orig_dot
<= orig_size
);
9964 orig_dot
+= orig_dot_copied
;
9965 orig_dot_copied
= 0;
9967 if (orig_dot
!= orig_size
)
9969 copy_size
= orig_size
- orig_dot
;
9970 BFD_ASSERT (orig_size
> orig_dot
);
9971 BFD_ASSERT (dup_dot
+ copy_size
== final_size
);
9972 memmove (&dup_contents
[dup_dot
], &contents
[orig_dot
], copy_size
);
9973 orig_dot
+= copy_size
;
9974 dup_dot
+= copy_size
;
9976 BFD_ASSERT (orig_size
== orig_dot
);
9977 BFD_ASSERT (final_size
== dup_dot
);
9979 /* Move the dup_contents back. */
9980 if (final_size
> orig_size
)
9982 /* Contents need to be reallocated. Swap the dup_contents into
9984 sec
->contents
= dup_contents
;
9986 contents
= dup_contents
;
9987 pin_contents (sec
, contents
);
9991 BFD_ASSERT (final_size
<= orig_size
);
9992 memset (contents
, 0, orig_size
);
9993 memcpy (contents
, dup_contents
, final_size
);
9994 free (dup_contents
);
9997 pin_contents (sec
, contents
);
9999 if (sec
->rawsize
== 0)
10000 sec
->rawsize
= sec
->size
;
10001 sec
->size
= final_size
;
10005 release_internal_relocs (sec
, internal_relocs
);
10006 release_contents (sec
, contents
);
10012 translate_section_fixes (asection
*sec
)
10014 xtensa_relax_info
*relax_info
;
10017 relax_info
= get_xtensa_relax_info (sec
);
10021 for (r
= relax_info
->fix_list
; r
!= NULL
; r
= r
->next
)
10022 if (!translate_reloc_bfd_fix (r
))
10029 /* Translate a fix given the mapping in the relax info for the target
10030 section. If it has already been translated, no work is required. */
10033 translate_reloc_bfd_fix (reloc_bfd_fix
*fix
)
10035 reloc_bfd_fix new_fix
;
10037 xtensa_relax_info
*relax_info
;
10038 removed_literal
*removed
;
10039 bfd_vma new_offset
, target_offset
;
10041 if (fix
->translated
)
10044 sec
= fix
->target_sec
;
10045 target_offset
= fix
->target_offset
;
10047 relax_info
= get_xtensa_relax_info (sec
);
10050 fix
->translated
= true;
10056 /* The fix does not need to be translated if the section cannot change. */
10057 if (!relax_info
->is_relaxable_literal_section
10058 && !relax_info
->is_relaxable_asm_section
)
10060 fix
->translated
= true;
10064 /* If the literal has been moved and this relocation was on an
10065 opcode, then the relocation should move to the new literal
10066 location. Otherwise, the relocation should move within the
10070 if (is_operand_relocation (fix
->src_type
))
10072 /* Check if the original relocation is against a literal being
10074 removed
= find_removed_literal (&relax_info
->removed_list
,
10082 /* The fact that there is still a relocation to this literal indicates
10083 that the literal is being coalesced, not simply removed. */
10084 BFD_ASSERT (removed
->to
.abfd
!= NULL
);
10086 /* This was moved to some other address (possibly another section). */
10087 new_sec
= r_reloc_get_section (&removed
->to
);
10088 if (new_sec
!= sec
)
10091 relax_info
= get_xtensa_relax_info (sec
);
10093 (!relax_info
->is_relaxable_literal_section
10094 && !relax_info
->is_relaxable_asm_section
))
10096 target_offset
= removed
->to
.target_offset
;
10097 new_fix
.target_sec
= new_sec
;
10098 new_fix
.target_offset
= target_offset
;
10099 new_fix
.translated
= true;
10104 target_offset
= removed
->to
.target_offset
;
10105 new_fix
.target_sec
= new_sec
;
10108 /* The target address may have been moved within its section. */
10109 new_offset
= offset_with_removed_text (&relax_info
->action_list
,
10112 new_fix
.target_offset
= new_offset
;
10113 new_fix
.target_offset
= new_offset
;
10114 new_fix
.translated
= true;
10120 /* Fix up a relocation to take account of removed literals. */
10123 translate_reloc (const r_reloc
*orig_rel
, r_reloc
*new_rel
, asection
*sec
)
10125 xtensa_relax_info
*relax_info
;
10126 removed_literal
*removed
;
10127 bfd_vma target_offset
, base_offset
;
10129 *new_rel
= *orig_rel
;
10131 if (!r_reloc_is_defined (orig_rel
))
10134 relax_info
= get_xtensa_relax_info (sec
);
10135 BFD_ASSERT (relax_info
&& (relax_info
->is_relaxable_literal_section
10136 || relax_info
->is_relaxable_asm_section
));
10138 target_offset
= orig_rel
->target_offset
;
10141 if (is_operand_relocation (ELF32_R_TYPE (orig_rel
->rela
.r_info
)))
10143 /* Check if the original relocation is against a literal being
10145 removed
= find_removed_literal (&relax_info
->removed_list
,
10148 if (removed
&& removed
->to
.abfd
)
10152 /* The fact that there is still a relocation to this literal indicates
10153 that the literal is being coalesced, not simply removed. */
10154 BFD_ASSERT (removed
->to
.abfd
!= NULL
);
10156 /* This was moved to some other address
10157 (possibly in another section). */
10158 *new_rel
= removed
->to
;
10159 new_sec
= r_reloc_get_section (new_rel
);
10160 if (new_sec
!= sec
)
10163 relax_info
= get_xtensa_relax_info (sec
);
10165 || (!relax_info
->is_relaxable_literal_section
10166 && !relax_info
->is_relaxable_asm_section
))
10169 target_offset
= new_rel
->target_offset
;
10172 /* Find the base offset of the reloc symbol, excluding any addend from the
10173 reloc or from the section contents (for a partial_inplace reloc). Then
10174 find the adjusted values of the offsets due to relaxation. The base
10175 offset is needed to determine the change to the reloc's addend; the reloc
10176 addend should not be adjusted due to relaxations located before the base
10179 base_offset
= r_reloc_get_target_offset (new_rel
) - new_rel
->rela
.r_addend
;
10180 if (base_offset
<= target_offset
)
10182 int base_removed
= removed_by_actions_map (&relax_info
->action_list
,
10183 base_offset
, false);
10184 int addend_removed
= removed_by_actions_map (&relax_info
->action_list
,
10185 target_offset
, false) -
10188 new_rel
->target_offset
= target_offset
- base_removed
- addend_removed
;
10189 new_rel
->rela
.r_addend
-= addend_removed
;
10193 /* Handle a negative addend. The base offset comes first. */
10194 int tgt_removed
= removed_by_actions_map (&relax_info
->action_list
,
10195 target_offset
, false);
10196 int addend_removed
= removed_by_actions_map (&relax_info
->action_list
,
10197 base_offset
, false) -
10200 new_rel
->target_offset
= target_offset
- tgt_removed
;
10201 new_rel
->rela
.r_addend
+= addend_removed
;
10208 /* For dynamic links, there may be a dynamic relocation for each
10209 literal. The number of dynamic relocations must be computed in
10210 size_dynamic_sections, which occurs before relaxation. When a
10211 literal is removed, this function checks if there is a corresponding
10212 dynamic relocation and shrinks the size of the appropriate dynamic
10213 relocation section accordingly. At this point, the contents of the
10214 dynamic relocation sections have not yet been filled in, so there's
10215 nothing else that needs to be done. */
10218 shrink_dynamic_reloc_sections (struct bfd_link_info
*info
,
10220 asection
*input_section
,
10221 Elf_Internal_Rela
*rel
)
10223 struct elf_xtensa_link_hash_table
*htab
;
10224 Elf_Internal_Shdr
*symtab_hdr
;
10225 struct elf_link_hash_entry
**sym_hashes
;
10226 unsigned long r_symndx
;
10228 struct elf_link_hash_entry
*h
;
10229 bool dynamic_symbol
;
10231 htab
= elf_xtensa_hash_table (info
);
10235 symtab_hdr
= &elf_tdata (abfd
)->symtab_hdr
;
10236 sym_hashes
= elf_sym_hashes (abfd
);
10238 r_type
= ELF32_R_TYPE (rel
->r_info
);
10239 r_symndx
= ELF32_R_SYM (rel
->r_info
);
10241 if (r_symndx
< symtab_hdr
->sh_info
)
10244 h
= sym_hashes
[r_symndx
- symtab_hdr
->sh_info
];
10246 dynamic_symbol
= elf_xtensa_dynamic_symbol_p (h
, info
);
10248 if ((r_type
== R_XTENSA_32
|| r_type
== R_XTENSA_PLT
)
10249 && (input_section
->flags
& SEC_ALLOC
) != 0
10251 || (bfd_link_pic (info
)
10252 && (!h
|| h
->root
.type
!= bfd_link_hash_undefweak
))))
10255 bool is_plt
= false;
10257 if (dynamic_symbol
&& r_type
== R_XTENSA_PLT
)
10259 srel
= htab
->elf
.srelplt
;
10263 srel
= htab
->elf
.srelgot
;
10265 /* Reduce size of the .rela.* section by one reloc. */
10266 BFD_ASSERT (srel
!= NULL
);
10267 BFD_ASSERT (srel
->size
>= sizeof (Elf32_External_Rela
));
10268 srel
->size
-= sizeof (Elf32_External_Rela
);
10272 asection
*splt
, *sgotplt
, *srelgot
;
10273 int reloc_index
, chunk
;
10275 /* Find the PLT reloc index of the entry being removed. This
10276 is computed from the size of ".rela.plt". It is needed to
10277 figure out which PLT chunk to resize. Usually "last index
10278 = size - 1" since the index starts at zero, but in this
10279 context, the size has just been decremented so there's no
10280 need to subtract one. */
10281 reloc_index
= srel
->size
/ sizeof (Elf32_External_Rela
);
10283 chunk
= reloc_index
/ PLT_ENTRIES_PER_CHUNK
;
10284 splt
= elf_xtensa_get_plt_section (info
, chunk
);
10285 sgotplt
= elf_xtensa_get_gotplt_section (info
, chunk
);
10286 BFD_ASSERT (splt
!= NULL
&& sgotplt
!= NULL
);
10288 /* Check if an entire PLT chunk has just been eliminated. */
10289 if (reloc_index
% PLT_ENTRIES_PER_CHUNK
== 0)
10291 /* The two magic GOT entries for that chunk can go away. */
10292 srelgot
= htab
->elf
.srelgot
;
10293 BFD_ASSERT (srelgot
!= NULL
);
10294 srelgot
->reloc_count
-= 2;
10295 srelgot
->size
-= 2 * sizeof (Elf32_External_Rela
);
10296 sgotplt
->size
-= 8;
10298 /* There should be only one entry left (and it will be
10300 BFD_ASSERT (sgotplt
->size
== 4);
10301 BFD_ASSERT (splt
->size
== PLT_ENTRY_SIZE
);
10304 BFD_ASSERT (sgotplt
->size
>= 4);
10305 BFD_ASSERT (splt
->size
>= PLT_ENTRY_SIZE
);
10307 sgotplt
->size
-= 4;
10308 splt
->size
-= PLT_ENTRY_SIZE
;
10314 /* Take an r_rel and move it to another section. This usually
10315 requires extending the interal_relocation array and pinning it. If
10316 the original r_rel is from the same BFD, we can complete this here.
10317 Otherwise, we add a fix record to let the final link fix the
10318 appropriate address. Contents and internal relocations for the
10319 section must be pinned after calling this routine. */
10322 move_literal (bfd
*abfd
,
10323 struct bfd_link_info
*link_info
,
10326 bfd_byte
*contents
,
10327 xtensa_relax_info
*relax_info
,
10328 Elf_Internal_Rela
**internal_relocs_p
,
10329 const literal_value
*lit
)
10331 Elf_Internal_Rela
*new_relocs
= NULL
;
10332 size_t new_relocs_count
= 0;
10333 Elf_Internal_Rela this_rela
;
10334 const r_reloc
*r_rel
;
10336 r_rel
= &lit
->r_rel
;
10337 BFD_ASSERT (elf_section_data (sec
)->relocs
== *internal_relocs_p
);
10339 if (r_reloc_is_const (r_rel
))
10340 bfd_put_32 (abfd
, lit
->value
, contents
+ offset
);
10345 reloc_bfd_fix
*fix
;
10346 unsigned insert_at
;
10348 r_type
= ELF32_R_TYPE (r_rel
->rela
.r_info
);
10350 /* This is the difficult case. We have to create a fix up. */
10351 this_rela
.r_offset
= offset
;
10352 this_rela
.r_info
= ELF32_R_INFO (0, r_type
);
10353 this_rela
.r_addend
=
10354 r_rel
->target_offset
- r_reloc_get_target_offset (r_rel
);
10355 bfd_put_32 (abfd
, lit
->value
, contents
+ offset
);
10357 /* Currently, we cannot move relocations during a relocatable link. */
10358 BFD_ASSERT (!bfd_link_relocatable (link_info
));
10359 fix
= reloc_bfd_fix_init (sec
, offset
, r_type
,
10360 r_reloc_get_section (r_rel
),
10361 r_rel
->target_offset
+ r_rel
->virtual_offset
,
10363 /* We also need to mark that relocations are needed here. */
10364 sec
->flags
|= SEC_RELOC
;
10366 translate_reloc_bfd_fix (fix
);
10367 /* This fix has not yet been translated. */
10368 add_fix (sec
, fix
);
10370 /* Add the relocation. If we have already allocated our own
10371 space for the relocations and we have room for more, then use
10372 it. Otherwise, allocate new space and move the literals. */
10373 insert_at
= sec
->reloc_count
;
10374 for (i
= 0; i
< sec
->reloc_count
; ++i
)
10376 if (this_rela
.r_offset
< (*internal_relocs_p
)[i
].r_offset
)
10383 if (*internal_relocs_p
!= relax_info
->allocated_relocs
10384 || sec
->reloc_count
+ 1 > relax_info
->allocated_relocs_count
)
10386 BFD_ASSERT (relax_info
->allocated_relocs
== NULL
10387 || sec
->reloc_count
== relax_info
->relocs_count
);
10389 if (relax_info
->allocated_relocs_count
== 0)
10390 new_relocs_count
= (sec
->reloc_count
+ 2) * 2;
10392 new_relocs_count
= (relax_info
->allocated_relocs_count
+ 2) * 2;
10394 new_relocs
= (Elf_Internal_Rela
*)
10395 bfd_zmalloc (sizeof (Elf_Internal_Rela
) * (new_relocs_count
));
10399 /* We could handle this more quickly by finding the split point. */
10400 if (insert_at
!= 0)
10401 memcpy (new_relocs
, *internal_relocs_p
,
10402 insert_at
* sizeof (Elf_Internal_Rela
));
10404 new_relocs
[insert_at
] = this_rela
;
10406 if (insert_at
!= sec
->reloc_count
)
10407 memcpy (new_relocs
+ insert_at
+ 1,
10408 (*internal_relocs_p
) + insert_at
,
10409 (sec
->reloc_count
- insert_at
)
10410 * sizeof (Elf_Internal_Rela
));
10412 if (*internal_relocs_p
!= relax_info
->allocated_relocs
)
10414 /* The first time we re-allocate, we can only free the
10415 old relocs if they were allocated with bfd_malloc.
10416 This is not true when keep_memory is in effect. */
10417 if (!link_info
->keep_memory
)
10418 free (*internal_relocs_p
);
10421 free (*internal_relocs_p
);
10422 relax_info
->allocated_relocs
= new_relocs
;
10423 relax_info
->allocated_relocs_count
= new_relocs_count
;
10424 elf_section_data (sec
)->relocs
= new_relocs
;
10425 sec
->reloc_count
++;
10426 relax_info
->relocs_count
= sec
->reloc_count
;
10427 *internal_relocs_p
= new_relocs
;
10431 if (insert_at
!= sec
->reloc_count
)
10434 for (idx
= sec
->reloc_count
; idx
> insert_at
; idx
--)
10435 (*internal_relocs_p
)[idx
] = (*internal_relocs_p
)[idx
-1];
10437 (*internal_relocs_p
)[insert_at
] = this_rela
;
10438 sec
->reloc_count
++;
10439 if (relax_info
->allocated_relocs
)
10440 relax_info
->relocs_count
= sec
->reloc_count
;
10447 /* This is similar to relax_section except that when a target is moved,
10448 we shift addresses up. We also need to modify the size. This
10449 algorithm does NOT allow for relocations into the middle of the
10450 property sections. */
10453 relax_property_section (bfd
*abfd
,
10455 struct bfd_link_info
*link_info
)
10457 Elf_Internal_Rela
*internal_relocs
;
10458 bfd_byte
*contents
;
10461 bool is_full_prop_section
;
10462 size_t last_zfill_target_offset
= 0;
10463 asection
*last_zfill_target_sec
= NULL
;
10464 bfd_size_type sec_size
;
10465 bfd_size_type entry_size
;
10467 sec_size
= bfd_get_section_limit (abfd
, sec
);
10468 internal_relocs
= retrieve_internal_relocs (abfd
, sec
,
10469 link_info
->keep_memory
);
10470 contents
= retrieve_contents (abfd
, sec
, link_info
->keep_memory
);
10471 if (contents
== NULL
&& sec_size
!= 0)
10477 is_full_prop_section
= xtensa_is_proptable_section (sec
);
10478 if (is_full_prop_section
)
10483 if (internal_relocs
)
10485 for (i
= 0; i
< sec
->reloc_count
; i
++)
10487 Elf_Internal_Rela
*irel
;
10488 xtensa_relax_info
*target_relax_info
;
10490 asection
*target_sec
;
10492 bfd_byte
*size_p
, *flags_p
;
10494 /* Locally change the source address.
10495 Translate the target to the new target address.
10496 If it points to this section and has been removed, MOVE IT.
10497 Also, don't forget to modify the associated SIZE at
10500 irel
= &internal_relocs
[i
];
10501 r_type
= ELF32_R_TYPE (irel
->r_info
);
10502 if (r_type
== R_XTENSA_NONE
)
10505 /* Find the literal value. */
10506 r_reloc_init (&val
.r_rel
, abfd
, irel
, contents
, sec_size
);
10507 size_p
= &contents
[irel
->r_offset
+ 4];
10509 if (is_full_prop_section
)
10510 flags_p
= &contents
[irel
->r_offset
+ 8];
10511 BFD_ASSERT (irel
->r_offset
+ entry_size
<= sec_size
);
10513 target_sec
= r_reloc_get_section (&val
.r_rel
);
10514 target_relax_info
= get_xtensa_relax_info (target_sec
);
10516 if (target_relax_info
10517 && (target_relax_info
->is_relaxable_literal_section
10518 || target_relax_info
->is_relaxable_asm_section
))
10520 /* Translate the relocation's destination. */
10521 bfd_vma old_offset
= val
.r_rel
.target_offset
;
10522 bfd_vma new_offset
;
10523 long old_size
, new_size
;
10524 int removed_by_old_offset
=
10525 removed_by_actions_map (&target_relax_info
->action_list
,
10526 old_offset
, false);
10527 new_offset
= old_offset
- removed_by_old_offset
;
10529 /* Assert that we are not out of bounds. */
10530 old_size
= bfd_get_32 (abfd
, size_p
);
10531 new_size
= old_size
;
10535 /* Only the first zero-sized unreachable entry is
10536 allowed to expand. In this case the new offset
10537 should be the offset before the fill and the new
10538 size is the expansion size. For other zero-sized
10539 entries the resulting size should be zero with an
10540 offset before or after the fill address depending
10541 on whether the expanding unreachable entry
10543 if (last_zfill_target_sec
== 0
10544 || last_zfill_target_sec
!= target_sec
10545 || last_zfill_target_offset
!= old_offset
)
10547 bfd_vma new_end_offset
= new_offset
;
10549 /* Recompute the new_offset, but this time don't
10550 include any fill inserted by relaxation. */
10551 removed_by_old_offset
=
10552 removed_by_actions_map (&target_relax_info
->action_list
,
10554 new_offset
= old_offset
- removed_by_old_offset
;
10556 /* If it is not unreachable and we have not yet
10557 seen an unreachable at this address, place it
10558 before the fill address. */
10559 if (flags_p
&& (bfd_get_32 (abfd
, flags_p
)
10560 & XTENSA_PROP_UNREACHABLE
) != 0)
10562 new_size
= new_end_offset
- new_offset
;
10564 last_zfill_target_sec
= target_sec
;
10565 last_zfill_target_offset
= old_offset
;
10571 int removed_by_old_offset_size
=
10572 removed_by_actions_map (&target_relax_info
->action_list
,
10573 old_offset
+ old_size
, true);
10574 new_size
-= removed_by_old_offset_size
- removed_by_old_offset
;
10577 if (new_size
!= old_size
)
10579 bfd_put_32 (abfd
, new_size
, size_p
);
10580 pin_contents (sec
, contents
);
10583 if (new_offset
!= old_offset
)
10585 bfd_vma diff
= new_offset
- old_offset
;
10586 irel
->r_addend
+= diff
;
10587 pin_internal_relocs (sec
, internal_relocs
);
10593 /* Combine adjacent property table entries. This is also done in
10594 finish_dynamic_sections() but at that point it's too late to
10595 reclaim the space in the output section, so we do this twice. */
10597 if (internal_relocs
&& (!bfd_link_relocatable (link_info
)
10598 || xtensa_is_littable_section (sec
)))
10600 Elf_Internal_Rela
*last_irel
= NULL
;
10601 Elf_Internal_Rela
*irel
, *next_rel
, *rel_end
;
10602 int removed_bytes
= 0;
10604 flagword predef_flags
;
10606 predef_flags
= xtensa_get_property_predef_flags (sec
);
10608 /* Walk over memory and relocations at the same time.
10609 This REQUIRES that the internal_relocs be sorted by offset. */
10610 qsort (internal_relocs
, sec
->reloc_count
, sizeof (Elf_Internal_Rela
),
10611 internal_reloc_compare
);
10613 pin_internal_relocs (sec
, internal_relocs
);
10614 pin_contents (sec
, contents
);
10616 next_rel
= internal_relocs
;
10617 rel_end
= internal_relocs
+ sec
->reloc_count
;
10619 BFD_ASSERT (sec
->size
% entry_size
== 0);
10621 for (offset
= 0; offset
< sec
->size
; offset
+= entry_size
)
10623 Elf_Internal_Rela
*offset_rel
, *extra_rel
;
10624 bfd_vma bytes_to_remove
, size
, actual_offset
;
10625 bool remove_this_rel
;
10628 /* Find the first relocation for the entry at the current offset.
10629 Adjust the offsets of any extra relocations for the previous
10634 for (irel
= next_rel
; irel
< rel_end
; irel
++)
10636 if ((irel
->r_offset
== offset
10637 && ELF32_R_TYPE (irel
->r_info
) != R_XTENSA_NONE
)
10638 || irel
->r_offset
> offset
)
10643 irel
->r_offset
-= removed_bytes
;
10647 /* Find the next relocation (if there are any left). */
10651 for (irel
= offset_rel
+ 1; irel
< rel_end
; irel
++)
10653 if (ELF32_R_TYPE (irel
->r_info
) != R_XTENSA_NONE
)
10661 /* Check if there are relocations on the current entry. There
10662 should usually be a relocation on the offset field. If there
10663 are relocations on the size or flags, then we can't optimize
10664 this entry. Also, find the next relocation to examine on the
10668 if (offset_rel
->r_offset
>= offset
+ entry_size
)
10670 next_rel
= offset_rel
;
10671 /* There are no relocations on the current entry, but we
10672 might still be able to remove it if the size is zero. */
10675 else if (offset_rel
->r_offset
> offset
10677 && extra_rel
->r_offset
< offset
+ entry_size
))
10679 /* There is a relocation on the size or flags, so we can't
10680 do anything with this entry. Continue with the next. */
10681 next_rel
= offset_rel
;
10686 BFD_ASSERT (offset_rel
->r_offset
== offset
);
10687 offset_rel
->r_offset
-= removed_bytes
;
10688 next_rel
= offset_rel
+ 1;
10694 remove_this_rel
= false;
10695 bytes_to_remove
= 0;
10696 actual_offset
= offset
- removed_bytes
;
10697 size
= bfd_get_32 (abfd
, &contents
[actual_offset
+ 4]);
10699 if (is_full_prop_section
)
10700 flags
= bfd_get_32 (abfd
, &contents
[actual_offset
+ 8]);
10702 flags
= predef_flags
;
10705 && (flags
& XTENSA_PROP_ALIGN
) == 0
10706 && (flags
& XTENSA_PROP_UNREACHABLE
) == 0)
10708 /* Always remove entries with zero size and no alignment. */
10709 bytes_to_remove
= entry_size
;
10711 remove_this_rel
= true;
10713 else if (offset_rel
10714 && ELF32_R_TYPE (offset_rel
->r_info
) == R_XTENSA_32
)
10718 flagword old_flags
;
10720 bfd_get_32 (abfd
, &contents
[last_irel
->r_offset
+ 4]);
10721 bfd_vma old_address
=
10722 (last_irel
->r_addend
10723 + bfd_get_32 (abfd
, &contents
[last_irel
->r_offset
]));
10724 bfd_vma new_address
=
10725 (offset_rel
->r_addend
10726 + bfd_get_32 (abfd
, &contents
[actual_offset
]));
10727 if (is_full_prop_section
)
10728 old_flags
= bfd_get_32
10729 (abfd
, &contents
[last_irel
->r_offset
+ 8]);
10731 old_flags
= predef_flags
;
10733 if ((ELF32_R_SYM (offset_rel
->r_info
)
10734 == ELF32_R_SYM (last_irel
->r_info
))
10735 && old_address
+ old_size
== new_address
10736 && old_flags
== flags
10737 && (old_flags
& XTENSA_PROP_INSN_BRANCH_TARGET
) == 0
10738 && (old_flags
& XTENSA_PROP_INSN_LOOP_TARGET
) == 0)
10740 /* Fix the old size. */
10741 bfd_put_32 (abfd
, old_size
+ size
,
10742 &contents
[last_irel
->r_offset
+ 4]);
10743 bytes_to_remove
= entry_size
;
10744 remove_this_rel
= true;
10747 last_irel
= offset_rel
;
10750 last_irel
= offset_rel
;
10753 if (remove_this_rel
)
10755 offset_rel
->r_info
= ELF32_R_INFO (0, R_XTENSA_NONE
);
10756 offset_rel
->r_offset
= 0;
10759 if (bytes_to_remove
!= 0)
10761 removed_bytes
+= bytes_to_remove
;
10762 if (offset
+ bytes_to_remove
< sec
->size
)
10763 memmove (&contents
[actual_offset
],
10764 &contents
[actual_offset
+ bytes_to_remove
],
10765 sec
->size
- offset
- bytes_to_remove
);
10771 /* Fix up any extra relocations on the last entry. */
10772 for (irel
= next_rel
; irel
< rel_end
; irel
++)
10773 irel
->r_offset
-= removed_bytes
;
10775 /* Clear the removed bytes. */
10776 memset (&contents
[sec
->size
- removed_bytes
], 0, removed_bytes
);
10778 if (sec
->rawsize
== 0)
10779 sec
->rawsize
= sec
->size
;
10780 sec
->size
-= removed_bytes
;
10782 if (xtensa_is_littable_section (sec
))
10784 asection
*sgotloc
= elf_xtensa_hash_table (link_info
)->sgotloc
;
10786 sgotloc
->size
-= removed_bytes
;
10792 release_internal_relocs (sec
, internal_relocs
);
10793 release_contents (sec
, contents
);
10798 /* Third relaxation pass. */
10800 /* Change symbol values to account for removed literals. */
10803 relax_section_symbols (bfd
*abfd
, asection
*sec
)
10805 xtensa_relax_info
*relax_info
;
10806 unsigned int sec_shndx
;
10807 Elf_Internal_Shdr
*symtab_hdr
;
10808 Elf_Internal_Sym
*isymbuf
;
10809 unsigned i
, num_syms
, num_locals
;
10811 relax_info
= get_xtensa_relax_info (sec
);
10812 BFD_ASSERT (relax_info
);
10814 if (!relax_info
->is_relaxable_literal_section
10815 && !relax_info
->is_relaxable_asm_section
)
10818 sec_shndx
= _bfd_elf_section_from_bfd_section (abfd
, sec
);
10820 symtab_hdr
= &elf_tdata (abfd
)->symtab_hdr
;
10821 isymbuf
= retrieve_local_syms (abfd
);
10823 num_syms
= symtab_hdr
->sh_size
/ sizeof (Elf32_External_Sym
);
10824 num_locals
= symtab_hdr
->sh_info
;
10826 /* Adjust the local symbols defined in this section. */
10827 for (i
= 0; i
< num_locals
; i
++)
10829 Elf_Internal_Sym
*isym
= &isymbuf
[i
];
10831 if (isym
->st_shndx
== sec_shndx
)
10833 bfd_vma orig_addr
= isym
->st_value
;
10834 int removed
= removed_by_actions_map (&relax_info
->action_list
,
10837 isym
->st_value
-= removed
;
10838 if (ELF32_ST_TYPE (isym
->st_info
) == STT_FUNC
)
10840 removed_by_actions_map (&relax_info
->action_list
,
10841 orig_addr
+ isym
->st_size
, false) -
10846 /* Now adjust the global symbols defined in this section. */
10847 for (i
= 0; i
< (num_syms
- num_locals
); i
++)
10849 struct elf_link_hash_entry
*sym_hash
;
10851 sym_hash
= elf_sym_hashes (abfd
)[i
];
10853 if (sym_hash
->root
.type
== bfd_link_hash_warning
)
10854 sym_hash
= (struct elf_link_hash_entry
*) sym_hash
->root
.u
.i
.link
;
10856 if ((sym_hash
->root
.type
== bfd_link_hash_defined
10857 || sym_hash
->root
.type
== bfd_link_hash_defweak
)
10858 && sym_hash
->root
.u
.def
.section
== sec
)
10860 bfd_vma orig_addr
= sym_hash
->root
.u
.def
.value
;
10861 int removed
= removed_by_actions_map (&relax_info
->action_list
,
10864 sym_hash
->root
.u
.def
.value
-= removed
;
10866 if (sym_hash
->type
== STT_FUNC
)
10868 removed_by_actions_map (&relax_info
->action_list
,
10869 orig_addr
+ sym_hash
->size
, false) -
10878 /* "Fix" handling functions, called while performing relocations. */
10881 do_fix_for_relocatable_link (Elf_Internal_Rela
*rel
,
10883 asection
*input_section
,
10884 bfd_byte
*contents
)
10887 asection
*sec
, *old_sec
;
10888 bfd_vma old_offset
;
10889 int r_type
= ELF32_R_TYPE (rel
->r_info
);
10890 reloc_bfd_fix
*fix
;
10892 if (r_type
== R_XTENSA_NONE
)
10895 fix
= get_bfd_fix (input_section
, rel
->r_offset
, r_type
);
10899 r_reloc_init (&r_rel
, input_bfd
, rel
, contents
,
10900 bfd_get_section_limit (input_bfd
, input_section
));
10901 old_sec
= r_reloc_get_section (&r_rel
);
10902 old_offset
= r_rel
.target_offset
;
10904 if (!old_sec
|| !r_reloc_is_defined (&r_rel
))
10906 if (r_type
!= R_XTENSA_ASM_EXPAND
)
10909 /* xgettext:c-format */
10910 (_("%pB(%pA+%#" PRIx64
"): unexpected fix for %s relocation"),
10911 input_bfd
, input_section
, (uint64_t) rel
->r_offset
,
10912 elf_howto_table
[r_type
].name
);
10915 /* Leave it be. Resolution will happen in a later stage. */
10919 sec
= fix
->target_sec
;
10920 rel
->r_addend
+= ((sec
->output_offset
+ fix
->target_offset
)
10921 - (old_sec
->output_offset
+ old_offset
));
10928 do_fix_for_final_link (Elf_Internal_Rela
*rel
,
10930 asection
*input_section
,
10931 bfd_byte
*contents
,
10932 bfd_vma
*relocationp
)
10935 int r_type
= ELF32_R_TYPE (rel
->r_info
);
10936 reloc_bfd_fix
*fix
;
10937 bfd_vma fixup_diff
;
10939 if (r_type
== R_XTENSA_NONE
)
10942 fix
= get_bfd_fix (input_section
, rel
->r_offset
, r_type
);
10946 sec
= fix
->target_sec
;
10948 fixup_diff
= rel
->r_addend
;
10949 if (elf_howto_table
[fix
->src_type
].partial_inplace
)
10951 bfd_vma inplace_val
;
10952 BFD_ASSERT (fix
->src_offset
10953 < bfd_get_section_limit (input_bfd
, input_section
));
10954 inplace_val
= bfd_get_32 (input_bfd
, &contents
[fix
->src_offset
]);
10955 fixup_diff
+= inplace_val
;
10958 *relocationp
= (sec
->output_section
->vma
10959 + sec
->output_offset
10960 + fix
->target_offset
- fixup_diff
);
10964 /* Miscellaneous utility functions.... */
10967 elf_xtensa_get_plt_section (struct bfd_link_info
*info
, int chunk
)
10973 return elf_hash_table (info
)->splt
;
10975 dynobj
= elf_hash_table (info
)->dynobj
;
10976 sprintf (plt_name
, ".plt.%u", chunk
);
10977 return bfd_get_linker_section (dynobj
, plt_name
);
10982 elf_xtensa_get_gotplt_section (struct bfd_link_info
*info
, int chunk
)
10988 return elf_hash_table (info
)->sgotplt
;
10990 dynobj
= elf_hash_table (info
)->dynobj
;
10991 sprintf (got_name
, ".got.plt.%u", chunk
);
10992 return bfd_get_linker_section (dynobj
, got_name
);
10996 /* Get the input section for a given symbol index.
10998 . a section symbol, return the section;
10999 . a common symbol, return the common section;
11000 . an undefined symbol, return the undefined section;
11001 . an indirect symbol, follow the links;
11002 . an absolute value, return the absolute section. */
11005 get_elf_r_symndx_section (bfd
*abfd
, unsigned long r_symndx
)
11007 Elf_Internal_Shdr
*symtab_hdr
= &elf_tdata (abfd
)->symtab_hdr
;
11008 asection
*target_sec
= NULL
;
11009 if (r_symndx
< symtab_hdr
->sh_info
)
11011 Elf_Internal_Sym
*isymbuf
;
11012 unsigned int section_index
;
11014 isymbuf
= retrieve_local_syms (abfd
);
11015 section_index
= isymbuf
[r_symndx
].st_shndx
;
11017 if (section_index
== SHN_UNDEF
)
11018 target_sec
= bfd_und_section_ptr
;
11019 else if (section_index
== SHN_ABS
)
11020 target_sec
= bfd_abs_section_ptr
;
11021 else if (section_index
== SHN_COMMON
)
11022 target_sec
= bfd_com_section_ptr
;
11024 target_sec
= bfd_section_from_elf_index (abfd
, section_index
);
11028 unsigned long indx
= r_symndx
- symtab_hdr
->sh_info
;
11029 struct elf_link_hash_entry
*h
= elf_sym_hashes (abfd
)[indx
];
11031 while (h
->root
.type
== bfd_link_hash_indirect
11032 || h
->root
.type
== bfd_link_hash_warning
)
11033 h
= (struct elf_link_hash_entry
*) h
->root
.u
.i
.link
;
11035 switch (h
->root
.type
)
11037 case bfd_link_hash_defined
:
11038 case bfd_link_hash_defweak
:
11039 target_sec
= h
->root
.u
.def
.section
;
11041 case bfd_link_hash_common
:
11042 target_sec
= bfd_com_section_ptr
;
11044 case bfd_link_hash_undefined
:
11045 case bfd_link_hash_undefweak
:
11046 target_sec
= bfd_und_section_ptr
;
11048 default: /* New indirect warning. */
11049 target_sec
= bfd_und_section_ptr
;
11057 static struct elf_link_hash_entry
*
11058 get_elf_r_symndx_hash_entry (bfd
*abfd
, unsigned long r_symndx
)
11060 unsigned long indx
;
11061 struct elf_link_hash_entry
*h
;
11062 Elf_Internal_Shdr
*symtab_hdr
= &elf_tdata (abfd
)->symtab_hdr
;
11064 if (r_symndx
< symtab_hdr
->sh_info
)
11067 indx
= r_symndx
- symtab_hdr
->sh_info
;
11068 h
= elf_sym_hashes (abfd
)[indx
];
11069 while (h
->root
.type
== bfd_link_hash_indirect
11070 || h
->root
.type
== bfd_link_hash_warning
)
11071 h
= (struct elf_link_hash_entry
*) h
->root
.u
.i
.link
;
11076 /* Get the section-relative offset for a symbol number. */
11079 get_elf_r_symndx_offset (bfd
*abfd
, unsigned long r_symndx
)
11081 Elf_Internal_Shdr
*symtab_hdr
= &elf_tdata (abfd
)->symtab_hdr
;
11082 bfd_vma offset
= 0;
11084 if (r_symndx
< symtab_hdr
->sh_info
)
11086 Elf_Internal_Sym
*isymbuf
;
11087 isymbuf
= retrieve_local_syms (abfd
);
11088 offset
= isymbuf
[r_symndx
].st_value
;
11092 unsigned long indx
= r_symndx
- symtab_hdr
->sh_info
;
11093 struct elf_link_hash_entry
*h
=
11094 elf_sym_hashes (abfd
)[indx
];
11096 while (h
->root
.type
== bfd_link_hash_indirect
11097 || h
->root
.type
== bfd_link_hash_warning
)
11098 h
= (struct elf_link_hash_entry
*) h
->root
.u
.i
.link
;
11099 if (h
->root
.type
== bfd_link_hash_defined
11100 || h
->root
.type
== bfd_link_hash_defweak
)
11101 offset
= h
->root
.u
.def
.value
;
11108 is_reloc_sym_weak (bfd
*abfd
, Elf_Internal_Rela
*rel
)
11110 unsigned long r_symndx
= ELF32_R_SYM (rel
->r_info
);
11111 struct elf_link_hash_entry
*h
;
11113 h
= get_elf_r_symndx_hash_entry (abfd
, r_symndx
);
11114 if (h
&& h
->root
.type
== bfd_link_hash_defweak
)
11121 pcrel_reloc_fits (xtensa_opcode opc
,
11123 bfd_vma self_address
,
11124 bfd_vma dest_address
)
11126 xtensa_isa isa
= xtensa_default_isa
;
11127 uint32 valp
= dest_address
;
11128 if (xtensa_operand_do_reloc (isa
, opc
, opnd
, &valp
, self_address
)
11129 || xtensa_operand_encode (isa
, opc
, opnd
, &valp
))
11136 xtensa_is_property_section (asection
*sec
)
11138 if (xtensa_is_insntable_section (sec
)
11139 || xtensa_is_littable_section (sec
)
11140 || xtensa_is_proptable_section (sec
))
11148 xtensa_is_insntable_section (asection
*sec
)
11150 if (startswith (sec
->name
, XTENSA_INSN_SEC_NAME
)
11151 || startswith (sec
->name
, ".gnu.linkonce.x."))
11159 xtensa_is_littable_section (asection
*sec
)
11161 if (startswith (sec
->name
, XTENSA_LIT_SEC_NAME
)
11162 || startswith (sec
->name
, ".gnu.linkonce.p."))
11170 xtensa_is_proptable_section (asection
*sec
)
11172 if (startswith (sec
->name
, XTENSA_PROP_SEC_NAME
)
11173 || startswith (sec
->name
, ".gnu.linkonce.prop."))
11181 internal_reloc_compare (const void *ap
, const void *bp
)
11183 const Elf_Internal_Rela
*a
= (const Elf_Internal_Rela
*) ap
;
11184 const Elf_Internal_Rela
*b
= (const Elf_Internal_Rela
*) bp
;
11186 if (a
->r_offset
!= b
->r_offset
)
11187 return (a
->r_offset
- b
->r_offset
);
11189 /* We don't need to sort on these criteria for correctness,
11190 but enforcing a more strict ordering prevents unstable qsort
11191 from behaving differently with different implementations.
11192 Without the code below we get correct but different results
11193 on Solaris 2.7 and 2.8. We would like to always produce the
11194 same results no matter the host. */
11196 if (a
->r_info
!= b
->r_info
)
11197 return (a
->r_info
- b
->r_info
);
11199 return (a
->r_addend
- b
->r_addend
);
11204 internal_reloc_matches (const void *ap
, const void *bp
)
11206 const Elf_Internal_Rela
*a
= (const Elf_Internal_Rela
*) ap
;
11207 const Elf_Internal_Rela
*b
= (const Elf_Internal_Rela
*) bp
;
11209 /* Check if one entry overlaps with the other; this shouldn't happen
11210 except when searching for a match. */
11211 return (a
->r_offset
- b
->r_offset
);
11215 /* Predicate function used to look up a section in a particular group. */
11218 match_section_group (bfd
*abfd ATTRIBUTE_UNUSED
, asection
*sec
, void *inf
)
11220 const char *gname
= inf
;
11221 const char *group_name
= elf_group_name (sec
);
11223 return (group_name
== gname
11224 || (group_name
!= NULL
11226 && strcmp (group_name
, gname
) == 0));
11231 xtensa_add_names (const char *base
, const char *suffix
)
11235 size_t base_len
= strlen (base
);
11236 size_t suffix_len
= strlen (suffix
);
11237 char *str
= bfd_malloc (base_len
+ suffix_len
+ 1);
11239 memcpy (str
, base
, base_len
);
11240 memcpy (str
+ base_len
, suffix
, suffix_len
+ 1);
11245 return strdup (base
);
11249 static int linkonce_len
= sizeof (".gnu.linkonce.") - 1;
11252 xtensa_property_section_name (asection
*sec
, const char *base_name
,
11253 bool separate_sections
)
11255 const char *suffix
, *group_name
;
11256 char *prop_sec_name
;
11258 group_name
= elf_group_name (sec
);
11261 suffix
= strrchr (sec
->name
, '.');
11262 if (suffix
== sec
->name
)
11264 prop_sec_name
= xtensa_add_names (base_name
, suffix
);
11266 else if (startswith (sec
->name
, ".gnu.linkonce."))
11268 char *linkonce_kind
= 0;
11270 if (strcmp (base_name
, XTENSA_INSN_SEC_NAME
) == 0)
11271 linkonce_kind
= "x.";
11272 else if (strcmp (base_name
, XTENSA_LIT_SEC_NAME
) == 0)
11273 linkonce_kind
= "p.";
11274 else if (strcmp (base_name
, XTENSA_PROP_SEC_NAME
) == 0)
11275 linkonce_kind
= "prop.";
11279 prop_sec_name
= (char *) bfd_malloc (strlen (sec
->name
)
11280 + strlen (linkonce_kind
) + 1);
11281 memcpy (prop_sec_name
, ".gnu.linkonce.", linkonce_len
);
11282 strcpy (prop_sec_name
+ linkonce_len
, linkonce_kind
);
11284 suffix
= sec
->name
+ linkonce_len
;
11285 /* For backward compatibility, replace "t." instead of inserting
11286 the new linkonce_kind (but not for "prop" sections). */
11287 if (startswith (suffix
, "t.") && linkonce_kind
[1] == '.')
11289 strcat (prop_sec_name
+ linkonce_len
, suffix
);
11293 prop_sec_name
= xtensa_add_names (base_name
,
11294 separate_sections
? sec
->name
: NULL
);
11297 return prop_sec_name
;
11302 xtensa_get_separate_property_section (asection
*sec
, const char *base_name
,
11303 bool separate_section
)
11305 char *prop_sec_name
;
11306 asection
*prop_sec
;
11308 prop_sec_name
= xtensa_property_section_name (sec
, base_name
,
11310 prop_sec
= bfd_get_section_by_name_if (sec
->owner
, prop_sec_name
,
11311 match_section_group
,
11312 (void *) elf_group_name (sec
));
11313 free (prop_sec_name
);
11318 xtensa_get_property_section (asection
*sec
, const char *base_name
)
11320 asection
*prop_sec
;
11322 /* Try individual property section first. */
11323 prop_sec
= xtensa_get_separate_property_section (sec
, base_name
, true);
11325 /* Refer to a common property section if individual is not present. */
11327 prop_sec
= xtensa_get_separate_property_section (sec
, base_name
, false);
11334 xtensa_get_property_predef_flags (asection
*sec
)
11336 if (xtensa_is_insntable_section (sec
))
11337 return (XTENSA_PROP_INSN
11338 | XTENSA_PROP_NO_TRANSFORM
11339 | XTENSA_PROP_INSN_NO_REORDER
);
11341 if (xtensa_is_littable_section (sec
))
11342 return (XTENSA_PROP_LITERAL
11343 | XTENSA_PROP_NO_TRANSFORM
11344 | XTENSA_PROP_INSN_NO_REORDER
);
11350 /* Other functions called directly by the linker. */
11353 xtensa_callback_required_dependence (bfd
*abfd
,
11355 struct bfd_link_info
*link_info
,
11356 deps_callback_t callback
,
11359 Elf_Internal_Rela
*internal_relocs
;
11360 bfd_byte
*contents
;
11363 bfd_size_type sec_size
;
11365 sec_size
= bfd_get_section_limit (abfd
, sec
);
11367 /* ".plt*" sections have no explicit relocations but they contain L32R
11368 instructions that reference the corresponding ".got.plt*" sections. */
11369 if ((sec
->flags
& SEC_LINKER_CREATED
) != 0
11370 && startswith (sec
->name
, ".plt"))
11374 /* Find the corresponding ".got.plt*" section. */
11375 if (sec
->name
[4] == '\0')
11376 sgotplt
= elf_hash_table (link_info
)->sgotplt
;
11382 BFD_ASSERT (sec
->name
[4] == '.');
11383 chunk
= strtol (&sec
->name
[5], NULL
, 10);
11385 sprintf (got_name
, ".got.plt.%u", chunk
);
11386 sgotplt
= bfd_get_linker_section (sec
->owner
, got_name
);
11388 BFD_ASSERT (sgotplt
);
11390 /* Assume worst-case offsets: L32R at the very end of the ".plt"
11391 section referencing a literal at the very beginning of
11392 ".got.plt". This is very close to the real dependence, anyway. */
11393 (*callback
) (sec
, sec_size
, sgotplt
, 0, closure
);
11396 /* Only ELF files are supported for Xtensa. Check here to avoid a segfault
11397 when building uclibc, which runs "ld -b binary /dev/null". */
11398 if (bfd_get_flavour (abfd
) != bfd_target_elf_flavour
)
11401 internal_relocs
= retrieve_internal_relocs (abfd
, sec
,
11402 link_info
->keep_memory
);
11403 if (internal_relocs
== NULL
11404 || sec
->reloc_count
== 0)
11407 /* Cache the contents for the duration of this scan. */
11408 contents
= retrieve_contents (abfd
, sec
, link_info
->keep_memory
);
11409 if (contents
== NULL
&& sec_size
!= 0)
11415 if (!xtensa_default_isa
)
11416 xtensa_default_isa
= xtensa_isa_init (0, 0);
11418 for (i
= 0; i
< sec
->reloc_count
; i
++)
11420 Elf_Internal_Rela
*irel
= &internal_relocs
[i
];
11421 if (is_l32r_relocation (abfd
, sec
, contents
, irel
))
11424 asection
*target_sec
;
11425 bfd_vma target_offset
;
11427 r_reloc_init (&l32r_rel
, abfd
, irel
, contents
, sec_size
);
11430 /* L32Rs must be local to the input file. */
11431 if (r_reloc_is_defined (&l32r_rel
))
11433 target_sec
= r_reloc_get_section (&l32r_rel
);
11434 target_offset
= l32r_rel
.target_offset
;
11436 (*callback
) (sec
, irel
->r_offset
, target_sec
, target_offset
,
11442 release_internal_relocs (sec
, internal_relocs
);
11443 release_contents (sec
, contents
);
11447 /* The default literal sections should always be marked as "code" (i.e.,
11448 SHF_EXECINSTR). This is particularly important for the Linux kernel
11449 module loader so that the literals are not placed after the text. */
11450 static const struct bfd_elf_special_section elf_xtensa_special_sections
[] =
11452 { STRING_COMMA_LEN (".fini.literal"), 0, SHT_PROGBITS
, SHF_ALLOC
+ SHF_EXECINSTR
},
11453 { STRING_COMMA_LEN (".init.literal"), 0, SHT_PROGBITS
, SHF_ALLOC
+ SHF_EXECINSTR
},
11454 { STRING_COMMA_LEN (".literal"), 0, SHT_PROGBITS
, SHF_ALLOC
+ SHF_EXECINSTR
},
11455 { STRING_COMMA_LEN (".xtensa.info"), 0, SHT_NOTE
, 0 },
11456 { NULL
, 0, 0, 0, 0 }
11459 #define ELF_TARGET_ID XTENSA_ELF_DATA
11461 #define TARGET_LITTLE_SYM xtensa_elf32_le_vec
11462 #define TARGET_LITTLE_NAME "elf32-xtensa-le"
11463 #define TARGET_BIG_SYM xtensa_elf32_be_vec
11464 #define TARGET_BIG_NAME "elf32-xtensa-be"
11465 #define ELF_ARCH bfd_arch_xtensa
11467 #define ELF_MACHINE_CODE EM_XTENSA
11468 #define ELF_MACHINE_ALT1 EM_XTENSA_OLD
11470 #define ELF_MAXPAGESIZE 0x1000
11471 #endif /* ELF_ARCH */
11473 #define elf_backend_can_gc_sections 1
11474 #define elf_backend_can_refcount 1
11475 #define elf_backend_plt_readonly 1
11476 #define elf_backend_got_header_size 4
11477 #define elf_backend_want_dynbss 0
11478 #define elf_backend_want_got_plt 1
11479 #define elf_backend_dtrel_excludes_plt 1
11481 #define elf_info_to_howto elf_xtensa_info_to_howto_rela
11483 #define bfd_elf32_mkobject elf_xtensa_mkobject
11485 #define bfd_elf32_bfd_merge_private_bfd_data elf_xtensa_merge_private_bfd_data
11486 #define bfd_elf32_new_section_hook elf_xtensa_new_section_hook
11487 #define bfd_elf32_bfd_print_private_bfd_data elf_xtensa_print_private_bfd_data
11488 #define bfd_elf32_bfd_relax_section elf_xtensa_relax_section
11489 #define bfd_elf32_bfd_reloc_type_lookup elf_xtensa_reloc_type_lookup
11490 #define bfd_elf32_bfd_reloc_name_lookup \
11491 elf_xtensa_reloc_name_lookup
11492 #define bfd_elf32_bfd_set_private_flags elf_xtensa_set_private_flags
11493 #define bfd_elf32_bfd_link_hash_table_create elf_xtensa_link_hash_table_create
11495 #define elf_backend_adjust_dynamic_symbol elf_xtensa_adjust_dynamic_symbol
11496 #define elf_backend_check_relocs elf_xtensa_check_relocs
11497 #define elf_backend_create_dynamic_sections elf_xtensa_create_dynamic_sections
11498 #define elf_backend_discard_info elf_xtensa_discard_info
11499 #define elf_backend_ignore_discarded_relocs elf_xtensa_ignore_discarded_relocs
11500 #define elf_backend_final_write_processing elf_xtensa_final_write_processing
11501 #define elf_backend_finish_dynamic_sections elf_xtensa_finish_dynamic_sections
11502 #define elf_backend_finish_dynamic_symbol elf_xtensa_finish_dynamic_symbol
11503 #define elf_backend_gc_mark_hook elf_xtensa_gc_mark_hook
11504 #define elf_backend_grok_prstatus elf_xtensa_grok_prstatus
11505 #define elf_backend_grok_psinfo elf_xtensa_grok_psinfo
11506 #define elf_backend_hide_symbol elf_xtensa_hide_symbol
11507 #define elf_backend_object_p elf_xtensa_object_p
11508 #define elf_backend_reloc_type_class elf_xtensa_reloc_type_class
11509 #define elf_backend_relocate_section elf_xtensa_relocate_section
11510 #define elf_backend_late_size_sections elf_xtensa_late_size_sections
11511 #define elf_backend_early_size_sections elf_xtensa_early_size_sections
11512 #define elf_backend_omit_section_dynsym _bfd_elf_omit_section_dynsym_all
11513 #define elf_backend_special_sections elf_xtensa_special_sections
11514 #define elf_backend_action_discarded elf_xtensa_action_discarded
11515 #define elf_backend_copy_indirect_symbol elf_xtensa_copy_indirect_symbol
11517 #include "elf32-target.h"