mm: hugetlb: fix hugepage memory leak caused by wrong reserve count
[linux/fpc-iii.git] / arch / arm64 / kernel / cpufeature.c
blob0669c63281ea01a93ef9794f9731b424b6afd28e
1 /*
2 * Contains CPU feature definitions
4 * Copyright (C) 2015 ARM Ltd.
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License version 2 as
8 * published by the Free Software Foundation.
10 * This program is distributed in the hope that it will be useful,
11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
13 * GNU General Public License for more details.
15 * You should have received a copy of the GNU General Public License
16 * along with this program. If not, see <http://www.gnu.org/licenses/>.
19 #define pr_fmt(fmt) "CPU features: " fmt
21 #include <linux/bsearch.h>
22 #include <linux/sort.h>
23 #include <linux/types.h>
24 #include <asm/cpu.h>
25 #include <asm/cpufeature.h>
26 #include <asm/cpu_ops.h>
27 #include <asm/processor.h>
28 #include <asm/sysreg.h>
30 unsigned long elf_hwcap __read_mostly;
31 EXPORT_SYMBOL_GPL(elf_hwcap);
33 #ifdef CONFIG_COMPAT
34 #define COMPAT_ELF_HWCAP_DEFAULT \
35 (COMPAT_HWCAP_HALF|COMPAT_HWCAP_THUMB|\
36 COMPAT_HWCAP_FAST_MULT|COMPAT_HWCAP_EDSP|\
37 COMPAT_HWCAP_TLS|COMPAT_HWCAP_VFP|\
38 COMPAT_HWCAP_VFPv3|COMPAT_HWCAP_VFPv4|\
39 COMPAT_HWCAP_NEON|COMPAT_HWCAP_IDIV|\
40 COMPAT_HWCAP_LPAE)
41 unsigned int compat_elf_hwcap __read_mostly = COMPAT_ELF_HWCAP_DEFAULT;
42 unsigned int compat_elf_hwcap2 __read_mostly;
43 #endif
45 DECLARE_BITMAP(cpu_hwcaps, ARM64_NCAPS);
47 #define __ARM64_FTR_BITS(SIGNED, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL) \
48 { \
49 .sign = SIGNED, \
50 .strict = STRICT, \
51 .type = TYPE, \
52 .shift = SHIFT, \
53 .width = WIDTH, \
54 .safe_val = SAFE_VAL, \
57 /* Define a feature with signed values */
58 #define ARM64_FTR_BITS(STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL) \
59 __ARM64_FTR_BITS(FTR_SIGNED, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL)
61 /* Define a feature with unsigned value */
62 #define U_ARM64_FTR_BITS(STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL) \
63 __ARM64_FTR_BITS(FTR_UNSIGNED, STRICT, TYPE, SHIFT, WIDTH, SAFE_VAL)
65 #define ARM64_FTR_END \
66 { \
67 .width = 0, \
70 static struct arm64_ftr_bits ftr_id_aa64isar0[] = {
71 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 32, 32, 0),
72 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64ISAR0_RDM_SHIFT, 4, 0),
73 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 24, 4, 0),
74 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_ATOMICS_SHIFT, 4, 0),
75 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_CRC32_SHIFT, 4, 0),
76 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_SHA2_SHIFT, 4, 0),
77 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_SHA1_SHIFT, 4, 0),
78 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, ID_AA64ISAR0_AES_SHIFT, 4, 0),
79 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 0, 4, 0), /* RAZ */
80 ARM64_FTR_END,
83 static struct arm64_ftr_bits ftr_id_aa64pfr0[] = {
84 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 32, 32, 0),
85 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 28, 4, 0),
86 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64PFR0_GIC_SHIFT, 4, 0),
87 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR0_ASIMD_SHIFT, 4, ID_AA64PFR0_ASIMD_NI),
88 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, ID_AA64PFR0_FP_SHIFT, 4, ID_AA64PFR0_FP_NI),
89 /* Linux doesn't care about the EL3 */
90 ARM64_FTR_BITS(FTR_NONSTRICT, FTR_EXACT, ID_AA64PFR0_EL3_SHIFT, 4, 0),
91 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64PFR0_EL2_SHIFT, 4, 0),
92 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64PFR0_EL1_SHIFT, 4, ID_AA64PFR0_EL1_64BIT_ONLY),
93 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64PFR0_EL0_SHIFT, 4, ID_AA64PFR0_EL0_64BIT_ONLY),
94 ARM64_FTR_END,
97 static struct arm64_ftr_bits ftr_id_aa64mmfr0[] = {
98 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 32, 32, 0),
99 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_TGRAN4_SHIFT, 4, ID_AA64MMFR0_TGRAN4_NI),
100 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_TGRAN64_SHIFT, 4, ID_AA64MMFR0_TGRAN64_NI),
101 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_TGRAN16_SHIFT, 4, ID_AA64MMFR0_TGRAN16_NI),
102 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_BIGENDEL0_SHIFT, 4, 0),
103 /* Linux shouldn't care about secure memory */
104 ARM64_FTR_BITS(FTR_NONSTRICT, FTR_EXACT, ID_AA64MMFR0_SNSMEM_SHIFT, 4, 0),
105 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_BIGENDEL_SHIFT, 4, 0),
106 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64MMFR0_ASID_SHIFT, 4, 0),
108 * Differing PARange is fine as long as all peripherals and memory are mapped
109 * within the minimum PARange of all CPUs
111 U_ARM64_FTR_BITS(FTR_NONSTRICT, FTR_LOWER_SAFE, ID_AA64MMFR0_PARANGE_SHIFT, 4, 0),
112 ARM64_FTR_END,
115 static struct arm64_ftr_bits ftr_id_aa64mmfr1[] = {
116 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 32, 32, 0),
117 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, ID_AA64MMFR1_PAN_SHIFT, 4, 0),
118 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64MMFR1_LOR_SHIFT, 4, 0),
119 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64MMFR1_HPD_SHIFT, 4, 0),
120 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64MMFR1_VHE_SHIFT, 4, 0),
121 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64MMFR1_VMIDBITS_SHIFT, 4, 0),
122 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64MMFR1_HADBS_SHIFT, 4, 0),
123 ARM64_FTR_END,
126 static struct arm64_ftr_bits ftr_ctr[] = {
127 U_ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 31, 1, 1), /* RAO */
128 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 28, 3, 0),
129 U_ARM64_FTR_BITS(FTR_STRICT, FTR_HIGHER_SAFE, 24, 4, 0), /* CWG */
130 U_ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 20, 4, 0), /* ERG */
131 U_ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 16, 4, 1), /* DminLine */
133 * Linux can handle differing I-cache policies. Userspace JITs will
134 * make use of *minLine
136 U_ARM64_FTR_BITS(FTR_NONSTRICT, FTR_EXACT, 14, 2, 0), /* L1Ip */
137 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 4, 10, 0), /* RAZ */
138 U_ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 0, 4, 0), /* IminLine */
139 ARM64_FTR_END,
142 static struct arm64_ftr_bits ftr_id_mmfr0[] = {
143 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 28, 4, 0), /* InnerShr */
144 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 24, 4, 0), /* FCSE */
145 ARM64_FTR_BITS(FTR_NONSTRICT, FTR_LOWER_SAFE, 20, 4, 0), /* AuxReg */
146 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 16, 4, 0), /* TCM */
147 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 12, 4, 0), /* ShareLvl */
148 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 8, 4, 0), /* OuterShr */
149 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 4, 4, 0), /* PMSA */
150 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 0, 4, 0), /* VMSA */
151 ARM64_FTR_END,
154 static struct arm64_ftr_bits ftr_id_aa64dfr0[] = {
155 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 32, 32, 0),
156 U_ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, ID_AA64DFR0_CTX_CMPS_SHIFT, 4, 0),
157 U_ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, ID_AA64DFR0_WRPS_SHIFT, 4, 0),
158 U_ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, ID_AA64DFR0_BRPS_SHIFT, 4, 0),
159 U_ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64DFR0_PMUVER_SHIFT, 4, 0),
160 U_ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64DFR0_TRACEVER_SHIFT, 4, 0),
161 U_ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_AA64DFR0_DEBUGVER_SHIFT, 4, 0x6),
162 ARM64_FTR_END,
165 static struct arm64_ftr_bits ftr_mvfr2[] = {
166 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 8, 24, 0), /* RAZ */
167 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 4, 4, 0), /* FPMisc */
168 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 0, 4, 0), /* SIMDMisc */
169 ARM64_FTR_END,
172 static struct arm64_ftr_bits ftr_dczid[] = {
173 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 5, 27, 0), /* RAZ */
174 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 4, 1, 1), /* DZP */
175 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 0, 4, 0), /* BS */
176 ARM64_FTR_END,
180 static struct arm64_ftr_bits ftr_id_isar5[] = {
181 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_ISAR5_RDM_SHIFT, 4, 0),
182 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 20, 4, 0), /* RAZ */
183 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_ISAR5_CRC32_SHIFT, 4, 0),
184 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_ISAR5_SHA2_SHIFT, 4, 0),
185 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_ISAR5_SHA1_SHIFT, 4, 0),
186 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_ISAR5_AES_SHIFT, 4, 0),
187 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, ID_ISAR5_SEVL_SHIFT, 4, 0),
188 ARM64_FTR_END,
191 static struct arm64_ftr_bits ftr_id_mmfr4[] = {
192 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 8, 24, 0), /* RAZ */
193 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 4, 4, 0), /* ac2 */
194 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 0, 4, 0), /* RAZ */
195 ARM64_FTR_END,
198 static struct arm64_ftr_bits ftr_id_pfr0[] = {
199 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 16, 16, 0), /* RAZ */
200 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 12, 4, 0), /* State3 */
201 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 8, 4, 0), /* State2 */
202 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 4, 4, 0), /* State1 */
203 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 0, 4, 0), /* State0 */
204 ARM64_FTR_END,
208 * Common ftr bits for a 32bit register with all hidden, strict
209 * attributes, with 4bit feature fields and a default safe value of
210 * 0. Covers the following 32bit registers:
211 * id_isar[0-4], id_mmfr[1-3], id_pfr1, mvfr[0-1]
213 static struct arm64_ftr_bits ftr_generic_32bits[] = {
214 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 28, 4, 0),
215 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 24, 4, 0),
216 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 20, 4, 0),
217 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 16, 4, 0),
218 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 12, 4, 0),
219 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 8, 4, 0),
220 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 4, 4, 0),
221 ARM64_FTR_BITS(FTR_STRICT, FTR_LOWER_SAFE, 0, 4, 0),
222 ARM64_FTR_END,
225 static struct arm64_ftr_bits ftr_generic[] = {
226 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 0, 64, 0),
227 ARM64_FTR_END,
230 static struct arm64_ftr_bits ftr_generic32[] = {
231 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 0, 32, 0),
232 ARM64_FTR_END,
235 static struct arm64_ftr_bits ftr_aa64raz[] = {
236 ARM64_FTR_BITS(FTR_STRICT, FTR_EXACT, 0, 64, 0),
237 ARM64_FTR_END,
240 #define ARM64_FTR_REG(id, table) \
242 .sys_id = id, \
243 .name = #id, \
244 .ftr_bits = &((table)[0]), \
247 static struct arm64_ftr_reg arm64_ftr_regs[] = {
249 /* Op1 = 0, CRn = 0, CRm = 1 */
250 ARM64_FTR_REG(SYS_ID_PFR0_EL1, ftr_id_pfr0),
251 ARM64_FTR_REG(SYS_ID_PFR1_EL1, ftr_generic_32bits),
252 ARM64_FTR_REG(SYS_ID_DFR0_EL1, ftr_generic_32bits),
253 ARM64_FTR_REG(SYS_ID_MMFR0_EL1, ftr_id_mmfr0),
254 ARM64_FTR_REG(SYS_ID_MMFR1_EL1, ftr_generic_32bits),
255 ARM64_FTR_REG(SYS_ID_MMFR2_EL1, ftr_generic_32bits),
256 ARM64_FTR_REG(SYS_ID_MMFR3_EL1, ftr_generic_32bits),
258 /* Op1 = 0, CRn = 0, CRm = 2 */
259 ARM64_FTR_REG(SYS_ID_ISAR0_EL1, ftr_generic_32bits),
260 ARM64_FTR_REG(SYS_ID_ISAR1_EL1, ftr_generic_32bits),
261 ARM64_FTR_REG(SYS_ID_ISAR2_EL1, ftr_generic_32bits),
262 ARM64_FTR_REG(SYS_ID_ISAR3_EL1, ftr_generic_32bits),
263 ARM64_FTR_REG(SYS_ID_ISAR4_EL1, ftr_generic_32bits),
264 ARM64_FTR_REG(SYS_ID_ISAR5_EL1, ftr_id_isar5),
265 ARM64_FTR_REG(SYS_ID_MMFR4_EL1, ftr_id_mmfr4),
267 /* Op1 = 0, CRn = 0, CRm = 3 */
268 ARM64_FTR_REG(SYS_MVFR0_EL1, ftr_generic_32bits),
269 ARM64_FTR_REG(SYS_MVFR1_EL1, ftr_generic_32bits),
270 ARM64_FTR_REG(SYS_MVFR2_EL1, ftr_mvfr2),
272 /* Op1 = 0, CRn = 0, CRm = 4 */
273 ARM64_FTR_REG(SYS_ID_AA64PFR0_EL1, ftr_id_aa64pfr0),
274 ARM64_FTR_REG(SYS_ID_AA64PFR1_EL1, ftr_aa64raz),
276 /* Op1 = 0, CRn = 0, CRm = 5 */
277 ARM64_FTR_REG(SYS_ID_AA64DFR0_EL1, ftr_id_aa64dfr0),
278 ARM64_FTR_REG(SYS_ID_AA64DFR1_EL1, ftr_generic),
280 /* Op1 = 0, CRn = 0, CRm = 6 */
281 ARM64_FTR_REG(SYS_ID_AA64ISAR0_EL1, ftr_id_aa64isar0),
282 ARM64_FTR_REG(SYS_ID_AA64ISAR1_EL1, ftr_aa64raz),
284 /* Op1 = 0, CRn = 0, CRm = 7 */
285 ARM64_FTR_REG(SYS_ID_AA64MMFR0_EL1, ftr_id_aa64mmfr0),
286 ARM64_FTR_REG(SYS_ID_AA64MMFR1_EL1, ftr_id_aa64mmfr1),
288 /* Op1 = 3, CRn = 0, CRm = 0 */
289 ARM64_FTR_REG(SYS_CTR_EL0, ftr_ctr),
290 ARM64_FTR_REG(SYS_DCZID_EL0, ftr_dczid),
292 /* Op1 = 3, CRn = 14, CRm = 0 */
293 ARM64_FTR_REG(SYS_CNTFRQ_EL0, ftr_generic32),
296 static int search_cmp_ftr_reg(const void *id, const void *regp)
298 return (int)(unsigned long)id - (int)((const struct arm64_ftr_reg *)regp)->sys_id;
302 * get_arm64_ftr_reg - Lookup a feature register entry using its
303 * sys_reg() encoding. With the array arm64_ftr_regs sorted in the
304 * ascending order of sys_id , we use binary search to find a matching
305 * entry.
307 * returns - Upon success, matching ftr_reg entry for id.
308 * - NULL on failure. It is upto the caller to decide
309 * the impact of a failure.
311 static struct arm64_ftr_reg *get_arm64_ftr_reg(u32 sys_id)
313 return bsearch((const void *)(unsigned long)sys_id,
314 arm64_ftr_regs,
315 ARRAY_SIZE(arm64_ftr_regs),
316 sizeof(arm64_ftr_regs[0]),
317 search_cmp_ftr_reg);
320 static u64 arm64_ftr_set_value(struct arm64_ftr_bits *ftrp, s64 reg, s64 ftr_val)
322 u64 mask = arm64_ftr_mask(ftrp);
324 reg &= ~mask;
325 reg |= (ftr_val << ftrp->shift) & mask;
326 return reg;
329 static s64 arm64_ftr_safe_value(struct arm64_ftr_bits *ftrp, s64 new, s64 cur)
331 s64 ret = 0;
333 switch (ftrp->type) {
334 case FTR_EXACT:
335 ret = ftrp->safe_val;
336 break;
337 case FTR_LOWER_SAFE:
338 ret = new < cur ? new : cur;
339 break;
340 case FTR_HIGHER_SAFE:
341 ret = new > cur ? new : cur;
342 break;
343 default:
344 BUG();
347 return ret;
350 static int __init sort_cmp_ftr_regs(const void *a, const void *b)
352 return ((const struct arm64_ftr_reg *)a)->sys_id -
353 ((const struct arm64_ftr_reg *)b)->sys_id;
356 static void __init swap_ftr_regs(void *a, void *b, int size)
358 struct arm64_ftr_reg tmp = *(struct arm64_ftr_reg *)a;
359 *(struct arm64_ftr_reg *)a = *(struct arm64_ftr_reg *)b;
360 *(struct arm64_ftr_reg *)b = tmp;
363 static void __init sort_ftr_regs(void)
365 /* Keep the array sorted so that we can do the binary search */
366 sort(arm64_ftr_regs,
367 ARRAY_SIZE(arm64_ftr_regs),
368 sizeof(arm64_ftr_regs[0]),
369 sort_cmp_ftr_regs,
370 swap_ftr_regs);
374 * Initialise the CPU feature register from Boot CPU values.
375 * Also initiliases the strict_mask for the register.
377 static void __init init_cpu_ftr_reg(u32 sys_reg, u64 new)
379 u64 val = 0;
380 u64 strict_mask = ~0x0ULL;
381 struct arm64_ftr_bits *ftrp;
382 struct arm64_ftr_reg *reg = get_arm64_ftr_reg(sys_reg);
384 BUG_ON(!reg);
386 for (ftrp = reg->ftr_bits; ftrp->width; ftrp++) {
387 s64 ftr_new = arm64_ftr_value(ftrp, new);
389 val = arm64_ftr_set_value(ftrp, val, ftr_new);
390 if (!ftrp->strict)
391 strict_mask &= ~arm64_ftr_mask(ftrp);
393 reg->sys_val = val;
394 reg->strict_mask = strict_mask;
397 void __init init_cpu_features(struct cpuinfo_arm64 *info)
399 /* Before we start using the tables, make sure it is sorted */
400 sort_ftr_regs();
402 init_cpu_ftr_reg(SYS_CTR_EL0, info->reg_ctr);
403 init_cpu_ftr_reg(SYS_DCZID_EL0, info->reg_dczid);
404 init_cpu_ftr_reg(SYS_CNTFRQ_EL0, info->reg_cntfrq);
405 init_cpu_ftr_reg(SYS_ID_AA64DFR0_EL1, info->reg_id_aa64dfr0);
406 init_cpu_ftr_reg(SYS_ID_AA64DFR1_EL1, info->reg_id_aa64dfr1);
407 init_cpu_ftr_reg(SYS_ID_AA64ISAR0_EL1, info->reg_id_aa64isar0);
408 init_cpu_ftr_reg(SYS_ID_AA64ISAR1_EL1, info->reg_id_aa64isar1);
409 init_cpu_ftr_reg(SYS_ID_AA64MMFR0_EL1, info->reg_id_aa64mmfr0);
410 init_cpu_ftr_reg(SYS_ID_AA64MMFR1_EL1, info->reg_id_aa64mmfr1);
411 init_cpu_ftr_reg(SYS_ID_AA64PFR0_EL1, info->reg_id_aa64pfr0);
412 init_cpu_ftr_reg(SYS_ID_AA64PFR1_EL1, info->reg_id_aa64pfr1);
413 init_cpu_ftr_reg(SYS_ID_DFR0_EL1, info->reg_id_dfr0);
414 init_cpu_ftr_reg(SYS_ID_ISAR0_EL1, info->reg_id_isar0);
415 init_cpu_ftr_reg(SYS_ID_ISAR1_EL1, info->reg_id_isar1);
416 init_cpu_ftr_reg(SYS_ID_ISAR2_EL1, info->reg_id_isar2);
417 init_cpu_ftr_reg(SYS_ID_ISAR3_EL1, info->reg_id_isar3);
418 init_cpu_ftr_reg(SYS_ID_ISAR4_EL1, info->reg_id_isar4);
419 init_cpu_ftr_reg(SYS_ID_ISAR5_EL1, info->reg_id_isar5);
420 init_cpu_ftr_reg(SYS_ID_MMFR0_EL1, info->reg_id_mmfr0);
421 init_cpu_ftr_reg(SYS_ID_MMFR1_EL1, info->reg_id_mmfr1);
422 init_cpu_ftr_reg(SYS_ID_MMFR2_EL1, info->reg_id_mmfr2);
423 init_cpu_ftr_reg(SYS_ID_MMFR3_EL1, info->reg_id_mmfr3);
424 init_cpu_ftr_reg(SYS_ID_PFR0_EL1, info->reg_id_pfr0);
425 init_cpu_ftr_reg(SYS_ID_PFR1_EL1, info->reg_id_pfr1);
426 init_cpu_ftr_reg(SYS_MVFR0_EL1, info->reg_mvfr0);
427 init_cpu_ftr_reg(SYS_MVFR1_EL1, info->reg_mvfr1);
428 init_cpu_ftr_reg(SYS_MVFR2_EL1, info->reg_mvfr2);
431 static void update_cpu_ftr_reg(struct arm64_ftr_reg *reg, u64 new)
433 struct arm64_ftr_bits *ftrp;
435 for (ftrp = reg->ftr_bits; ftrp->width; ftrp++) {
436 s64 ftr_cur = arm64_ftr_value(ftrp, reg->sys_val);
437 s64 ftr_new = arm64_ftr_value(ftrp, new);
439 if (ftr_cur == ftr_new)
440 continue;
441 /* Find a safe value */
442 ftr_new = arm64_ftr_safe_value(ftrp, ftr_new, ftr_cur);
443 reg->sys_val = arm64_ftr_set_value(ftrp, reg->sys_val, ftr_new);
448 static int check_update_ftr_reg(u32 sys_id, int cpu, u64 val, u64 boot)
450 struct arm64_ftr_reg *regp = get_arm64_ftr_reg(sys_id);
452 BUG_ON(!regp);
453 update_cpu_ftr_reg(regp, val);
454 if ((boot & regp->strict_mask) == (val & regp->strict_mask))
455 return 0;
456 pr_warn("SANITY CHECK: Unexpected variation in %s. Boot CPU: %#016llx, CPU%d: %#016llx\n",
457 regp->name, boot, cpu, val);
458 return 1;
462 * Update system wide CPU feature registers with the values from a
463 * non-boot CPU. Also performs SANITY checks to make sure that there
464 * aren't any insane variations from that of the boot CPU.
466 void update_cpu_features(int cpu,
467 struct cpuinfo_arm64 *info,
468 struct cpuinfo_arm64 *boot)
470 int taint = 0;
473 * The kernel can handle differing I-cache policies, but otherwise
474 * caches should look identical. Userspace JITs will make use of
475 * *minLine.
477 taint |= check_update_ftr_reg(SYS_CTR_EL0, cpu,
478 info->reg_ctr, boot->reg_ctr);
481 * Userspace may perform DC ZVA instructions. Mismatched block sizes
482 * could result in too much or too little memory being zeroed if a
483 * process is preempted and migrated between CPUs.
485 taint |= check_update_ftr_reg(SYS_DCZID_EL0, cpu,
486 info->reg_dczid, boot->reg_dczid);
488 /* If different, timekeeping will be broken (especially with KVM) */
489 taint |= check_update_ftr_reg(SYS_CNTFRQ_EL0, cpu,
490 info->reg_cntfrq, boot->reg_cntfrq);
493 * The kernel uses self-hosted debug features and expects CPUs to
494 * support identical debug features. We presently need CTX_CMPs, WRPs,
495 * and BRPs to be identical.
496 * ID_AA64DFR1 is currently RES0.
498 taint |= check_update_ftr_reg(SYS_ID_AA64DFR0_EL1, cpu,
499 info->reg_id_aa64dfr0, boot->reg_id_aa64dfr0);
500 taint |= check_update_ftr_reg(SYS_ID_AA64DFR1_EL1, cpu,
501 info->reg_id_aa64dfr1, boot->reg_id_aa64dfr1);
503 * Even in big.LITTLE, processors should be identical instruction-set
504 * wise.
506 taint |= check_update_ftr_reg(SYS_ID_AA64ISAR0_EL1, cpu,
507 info->reg_id_aa64isar0, boot->reg_id_aa64isar0);
508 taint |= check_update_ftr_reg(SYS_ID_AA64ISAR1_EL1, cpu,
509 info->reg_id_aa64isar1, boot->reg_id_aa64isar1);
512 * Differing PARange support is fine as long as all peripherals and
513 * memory are mapped within the minimum PARange of all CPUs.
514 * Linux should not care about secure memory.
516 taint |= check_update_ftr_reg(SYS_ID_AA64MMFR0_EL1, cpu,
517 info->reg_id_aa64mmfr0, boot->reg_id_aa64mmfr0);
518 taint |= check_update_ftr_reg(SYS_ID_AA64MMFR1_EL1, cpu,
519 info->reg_id_aa64mmfr1, boot->reg_id_aa64mmfr1);
522 * EL3 is not our concern.
523 * ID_AA64PFR1 is currently RES0.
525 taint |= check_update_ftr_reg(SYS_ID_AA64PFR0_EL1, cpu,
526 info->reg_id_aa64pfr0, boot->reg_id_aa64pfr0);
527 taint |= check_update_ftr_reg(SYS_ID_AA64PFR1_EL1, cpu,
528 info->reg_id_aa64pfr1, boot->reg_id_aa64pfr1);
531 * If we have AArch32, we care about 32-bit features for compat. These
532 * registers should be RES0 otherwise.
534 taint |= check_update_ftr_reg(SYS_ID_DFR0_EL1, cpu,
535 info->reg_id_dfr0, boot->reg_id_dfr0);
536 taint |= check_update_ftr_reg(SYS_ID_ISAR0_EL1, cpu,
537 info->reg_id_isar0, boot->reg_id_isar0);
538 taint |= check_update_ftr_reg(SYS_ID_ISAR1_EL1, cpu,
539 info->reg_id_isar1, boot->reg_id_isar1);
540 taint |= check_update_ftr_reg(SYS_ID_ISAR2_EL1, cpu,
541 info->reg_id_isar2, boot->reg_id_isar2);
542 taint |= check_update_ftr_reg(SYS_ID_ISAR3_EL1, cpu,
543 info->reg_id_isar3, boot->reg_id_isar3);
544 taint |= check_update_ftr_reg(SYS_ID_ISAR4_EL1, cpu,
545 info->reg_id_isar4, boot->reg_id_isar4);
546 taint |= check_update_ftr_reg(SYS_ID_ISAR5_EL1, cpu,
547 info->reg_id_isar5, boot->reg_id_isar5);
550 * Regardless of the value of the AuxReg field, the AIFSR, ADFSR, and
551 * ACTLR formats could differ across CPUs and therefore would have to
552 * be trapped for virtualization anyway.
554 taint |= check_update_ftr_reg(SYS_ID_MMFR0_EL1, cpu,
555 info->reg_id_mmfr0, boot->reg_id_mmfr0);
556 taint |= check_update_ftr_reg(SYS_ID_MMFR1_EL1, cpu,
557 info->reg_id_mmfr1, boot->reg_id_mmfr1);
558 taint |= check_update_ftr_reg(SYS_ID_MMFR2_EL1, cpu,
559 info->reg_id_mmfr2, boot->reg_id_mmfr2);
560 taint |= check_update_ftr_reg(SYS_ID_MMFR3_EL1, cpu,
561 info->reg_id_mmfr3, boot->reg_id_mmfr3);
562 taint |= check_update_ftr_reg(SYS_ID_PFR0_EL1, cpu,
563 info->reg_id_pfr0, boot->reg_id_pfr0);
564 taint |= check_update_ftr_reg(SYS_ID_PFR1_EL1, cpu,
565 info->reg_id_pfr1, boot->reg_id_pfr1);
566 taint |= check_update_ftr_reg(SYS_MVFR0_EL1, cpu,
567 info->reg_mvfr0, boot->reg_mvfr0);
568 taint |= check_update_ftr_reg(SYS_MVFR1_EL1, cpu,
569 info->reg_mvfr1, boot->reg_mvfr1);
570 taint |= check_update_ftr_reg(SYS_MVFR2_EL1, cpu,
571 info->reg_mvfr2, boot->reg_mvfr2);
574 * Mismatched CPU features are a recipe for disaster. Don't even
575 * pretend to support them.
577 WARN_TAINT_ONCE(taint, TAINT_CPU_OUT_OF_SPEC,
578 "Unsupported CPU feature variation.\n");
581 u64 read_system_reg(u32 id)
583 struct arm64_ftr_reg *regp = get_arm64_ftr_reg(id);
585 /* We shouldn't get a request for an unsupported register */
586 BUG_ON(!regp);
587 return regp->sys_val;
590 #include <linux/irqchip/arm-gic-v3.h>
592 static bool
593 feature_matches(u64 reg, const struct arm64_cpu_capabilities *entry)
595 int val = cpuid_feature_extract_field(reg, entry->field_pos);
597 return val >= entry->min_field_value;
600 static bool
601 has_cpuid_feature(const struct arm64_cpu_capabilities *entry)
603 u64 val;
605 val = read_system_reg(entry->sys_reg);
606 return feature_matches(val, entry);
609 static bool has_useable_gicv3_cpuif(const struct arm64_cpu_capabilities *entry)
611 bool has_sre;
613 if (!has_cpuid_feature(entry))
614 return false;
616 has_sre = gic_enable_sre();
617 if (!has_sre)
618 pr_warn_once("%s present but disabled by higher exception level\n",
619 entry->desc);
621 return has_sre;
624 static const struct arm64_cpu_capabilities arm64_features[] = {
626 .desc = "GIC system register CPU interface",
627 .capability = ARM64_HAS_SYSREG_GIC_CPUIF,
628 .matches = has_useable_gicv3_cpuif,
629 .sys_reg = SYS_ID_AA64PFR0_EL1,
630 .field_pos = ID_AA64PFR0_GIC_SHIFT,
631 .min_field_value = 1,
633 #ifdef CONFIG_ARM64_PAN
635 .desc = "Privileged Access Never",
636 .capability = ARM64_HAS_PAN,
637 .matches = has_cpuid_feature,
638 .sys_reg = SYS_ID_AA64MMFR1_EL1,
639 .field_pos = ID_AA64MMFR1_PAN_SHIFT,
640 .min_field_value = 1,
641 .enable = cpu_enable_pan,
643 #endif /* CONFIG_ARM64_PAN */
644 #if defined(CONFIG_AS_LSE) && defined(CONFIG_ARM64_LSE_ATOMICS)
646 .desc = "LSE atomic instructions",
647 .capability = ARM64_HAS_LSE_ATOMICS,
648 .matches = has_cpuid_feature,
649 .sys_reg = SYS_ID_AA64ISAR0_EL1,
650 .field_pos = ID_AA64ISAR0_ATOMICS_SHIFT,
651 .min_field_value = 2,
653 #endif /* CONFIG_AS_LSE && CONFIG_ARM64_LSE_ATOMICS */
657 #define HWCAP_CAP(reg, field, min_value, type, cap) \
659 .desc = #cap, \
660 .matches = has_cpuid_feature, \
661 .sys_reg = reg, \
662 .field_pos = field, \
663 .min_field_value = min_value, \
664 .hwcap_type = type, \
665 .hwcap = cap, \
668 static const struct arm64_cpu_capabilities arm64_hwcaps[] = {
669 HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_AES_SHIFT, 2, CAP_HWCAP, HWCAP_PMULL),
670 HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_AES_SHIFT, 1, CAP_HWCAP, HWCAP_AES),
671 HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_SHA1_SHIFT, 1, CAP_HWCAP, HWCAP_SHA1),
672 HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_SHA2_SHIFT, 1, CAP_HWCAP, HWCAP_SHA2),
673 HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_CRC32_SHIFT, 1, CAP_HWCAP, HWCAP_CRC32),
674 HWCAP_CAP(SYS_ID_AA64ISAR0_EL1, ID_AA64ISAR0_ATOMICS_SHIFT, 2, CAP_HWCAP, HWCAP_ATOMICS),
675 HWCAP_CAP(SYS_ID_AA64PFR0_EL1, ID_AA64PFR0_FP_SHIFT, 0, CAP_HWCAP, HWCAP_FP),
676 HWCAP_CAP(SYS_ID_AA64PFR0_EL1, ID_AA64PFR0_ASIMD_SHIFT, 0, CAP_HWCAP, HWCAP_ASIMD),
677 #ifdef CONFIG_COMPAT
678 HWCAP_CAP(SYS_ID_ISAR5_EL1, ID_ISAR5_AES_SHIFT, 2, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_PMULL),
679 HWCAP_CAP(SYS_ID_ISAR5_EL1, ID_ISAR5_AES_SHIFT, 1, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_AES),
680 HWCAP_CAP(SYS_ID_ISAR5_EL1, ID_ISAR5_SHA1_SHIFT, 1, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_SHA1),
681 HWCAP_CAP(SYS_ID_ISAR5_EL1, ID_ISAR5_SHA2_SHIFT, 1, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_SHA2),
682 HWCAP_CAP(SYS_ID_ISAR5_EL1, ID_ISAR5_CRC32_SHIFT, 1, CAP_COMPAT_HWCAP2, COMPAT_HWCAP2_CRC32),
683 #endif
687 static void cap_set_hwcap(const struct arm64_cpu_capabilities *cap)
689 switch (cap->hwcap_type) {
690 case CAP_HWCAP:
691 elf_hwcap |= cap->hwcap;
692 break;
693 #ifdef CONFIG_COMPAT
694 case CAP_COMPAT_HWCAP:
695 compat_elf_hwcap |= (u32)cap->hwcap;
696 break;
697 case CAP_COMPAT_HWCAP2:
698 compat_elf_hwcap2 |= (u32)cap->hwcap;
699 break;
700 #endif
701 default:
702 WARN_ON(1);
703 break;
707 /* Check if we have a particular HWCAP enabled */
708 static bool __maybe_unused cpus_have_hwcap(const struct arm64_cpu_capabilities *cap)
710 bool rc;
712 switch (cap->hwcap_type) {
713 case CAP_HWCAP:
714 rc = (elf_hwcap & cap->hwcap) != 0;
715 break;
716 #ifdef CONFIG_COMPAT
717 case CAP_COMPAT_HWCAP:
718 rc = (compat_elf_hwcap & (u32)cap->hwcap) != 0;
719 break;
720 case CAP_COMPAT_HWCAP2:
721 rc = (compat_elf_hwcap2 & (u32)cap->hwcap) != 0;
722 break;
723 #endif
724 default:
725 WARN_ON(1);
726 rc = false;
729 return rc;
732 static void setup_cpu_hwcaps(void)
734 int i;
735 const struct arm64_cpu_capabilities *hwcaps = arm64_hwcaps;
737 for (i = 0; hwcaps[i].desc; i++)
738 if (hwcaps[i].matches(&hwcaps[i]))
739 cap_set_hwcap(&hwcaps[i]);
742 void update_cpu_capabilities(const struct arm64_cpu_capabilities *caps,
743 const char *info)
745 int i;
747 for (i = 0; caps[i].desc; i++) {
748 if (!caps[i].matches(&caps[i]))
749 continue;
751 if (!cpus_have_cap(caps[i].capability))
752 pr_info("%s %s\n", info, caps[i].desc);
753 cpus_set_cap(caps[i].capability);
758 * Run through the enabled capabilities and enable() it on all active
759 * CPUs
761 static void enable_cpu_capabilities(const struct arm64_cpu_capabilities *caps)
763 int i;
765 for (i = 0; caps[i].desc; i++)
766 if (caps[i].enable && cpus_have_cap(caps[i].capability))
767 on_each_cpu(caps[i].enable, NULL, true);
770 #ifdef CONFIG_HOTPLUG_CPU
773 * Flag to indicate if we have computed the system wide
774 * capabilities based on the boot time active CPUs. This
775 * will be used to determine if a new booting CPU should
776 * go through the verification process to make sure that it
777 * supports the system capabilities, without using a hotplug
778 * notifier.
780 static bool sys_caps_initialised;
782 static inline void set_sys_caps_initialised(void)
784 sys_caps_initialised = true;
788 * __raw_read_system_reg() - Used by a STARTING cpu before cpuinfo is populated.
790 static u64 __raw_read_system_reg(u32 sys_id)
792 switch (sys_id) {
793 case SYS_ID_PFR0_EL1: return (u64)read_cpuid(ID_PFR0_EL1);
794 case SYS_ID_PFR1_EL1: return (u64)read_cpuid(ID_PFR1_EL1);
795 case SYS_ID_DFR0_EL1: return (u64)read_cpuid(ID_DFR0_EL1);
796 case SYS_ID_MMFR0_EL1: return (u64)read_cpuid(ID_MMFR0_EL1);
797 case SYS_ID_MMFR1_EL1: return (u64)read_cpuid(ID_MMFR1_EL1);
798 case SYS_ID_MMFR2_EL1: return (u64)read_cpuid(ID_MMFR2_EL1);
799 case SYS_ID_MMFR3_EL1: return (u64)read_cpuid(ID_MMFR3_EL1);
800 case SYS_ID_ISAR0_EL1: return (u64)read_cpuid(ID_ISAR0_EL1);
801 case SYS_ID_ISAR1_EL1: return (u64)read_cpuid(ID_ISAR1_EL1);
802 case SYS_ID_ISAR2_EL1: return (u64)read_cpuid(ID_ISAR2_EL1);
803 case SYS_ID_ISAR3_EL1: return (u64)read_cpuid(ID_ISAR3_EL1);
804 case SYS_ID_ISAR4_EL1: return (u64)read_cpuid(ID_ISAR4_EL1);
805 case SYS_ID_ISAR5_EL1: return (u64)read_cpuid(ID_ISAR4_EL1);
806 case SYS_MVFR0_EL1: return (u64)read_cpuid(MVFR0_EL1);
807 case SYS_MVFR1_EL1: return (u64)read_cpuid(MVFR1_EL1);
808 case SYS_MVFR2_EL1: return (u64)read_cpuid(MVFR2_EL1);
810 case SYS_ID_AA64PFR0_EL1: return (u64)read_cpuid(ID_AA64PFR0_EL1);
811 case SYS_ID_AA64PFR1_EL1: return (u64)read_cpuid(ID_AA64PFR0_EL1);
812 case SYS_ID_AA64DFR0_EL1: return (u64)read_cpuid(ID_AA64DFR0_EL1);
813 case SYS_ID_AA64DFR1_EL1: return (u64)read_cpuid(ID_AA64DFR0_EL1);
814 case SYS_ID_AA64MMFR0_EL1: return (u64)read_cpuid(ID_AA64MMFR0_EL1);
815 case SYS_ID_AA64MMFR1_EL1: return (u64)read_cpuid(ID_AA64MMFR1_EL1);
816 case SYS_ID_AA64ISAR0_EL1: return (u64)read_cpuid(ID_AA64ISAR0_EL1);
817 case SYS_ID_AA64ISAR1_EL1: return (u64)read_cpuid(ID_AA64ISAR1_EL1);
819 case SYS_CNTFRQ_EL0: return (u64)read_cpuid(CNTFRQ_EL0);
820 case SYS_CTR_EL0: return (u64)read_cpuid(CTR_EL0);
821 case SYS_DCZID_EL0: return (u64)read_cpuid(DCZID_EL0);
822 default:
823 BUG();
824 return 0;
829 * Park the CPU which doesn't have the capability as advertised
830 * by the system.
832 static void fail_incapable_cpu(char *cap_type,
833 const struct arm64_cpu_capabilities *cap)
835 int cpu = smp_processor_id();
837 pr_crit("CPU%d: missing %s : %s\n", cpu, cap_type, cap->desc);
838 /* Mark this CPU absent */
839 set_cpu_present(cpu, 0);
841 /* Check if we can park ourselves */
842 if (cpu_ops[cpu] && cpu_ops[cpu]->cpu_die)
843 cpu_ops[cpu]->cpu_die(cpu);
844 asm(
845 "1: wfe\n"
846 " wfi\n"
847 " b 1b");
851 * Run through the enabled system capabilities and enable() it on this CPU.
852 * The capabilities were decided based on the available CPUs at the boot time.
853 * Any new CPU should match the system wide status of the capability. If the
854 * new CPU doesn't have a capability which the system now has enabled, we
855 * cannot do anything to fix it up and could cause unexpected failures. So
856 * we park the CPU.
858 void verify_local_cpu_capabilities(void)
860 int i;
861 const struct arm64_cpu_capabilities *caps;
864 * If we haven't computed the system capabilities, there is nothing
865 * to verify.
867 if (!sys_caps_initialised)
868 return;
870 caps = arm64_features;
871 for (i = 0; caps[i].desc; i++) {
872 if (!cpus_have_cap(caps[i].capability) || !caps[i].sys_reg)
873 continue;
875 * If the new CPU misses an advertised feature, we cannot proceed
876 * further, park the cpu.
878 if (!feature_matches(__raw_read_system_reg(caps[i].sys_reg), &caps[i]))
879 fail_incapable_cpu("arm64_features", &caps[i]);
880 if (caps[i].enable)
881 caps[i].enable(NULL);
884 for (i = 0, caps = arm64_hwcaps; caps[i].desc; i++) {
885 if (!cpus_have_hwcap(&caps[i]))
886 continue;
887 if (!feature_matches(__raw_read_system_reg(caps[i].sys_reg), &caps[i]))
888 fail_incapable_cpu("arm64_hwcaps", &caps[i]);
892 #else /* !CONFIG_HOTPLUG_CPU */
894 static inline void set_sys_caps_initialised(void)
898 #endif /* CONFIG_HOTPLUG_CPU */
900 static void setup_feature_capabilities(void)
902 update_cpu_capabilities(arm64_features, "detected feature:");
903 enable_cpu_capabilities(arm64_features);
906 void __init setup_cpu_features(void)
908 u32 cwg;
909 int cls;
911 /* Set the CPU feature capabilies */
912 setup_feature_capabilities();
913 setup_cpu_hwcaps();
915 /* Advertise that we have computed the system capabilities */
916 set_sys_caps_initialised();
919 * Check for sane CTR_EL0.CWG value.
921 cwg = cache_type_cwg();
922 cls = cache_line_size();
923 if (!cwg)
924 pr_warn("No Cache Writeback Granule information, assuming cache line size %d\n",
925 cls);
926 if (L1_CACHE_BYTES < cls)
927 pr_warn("L1_CACHE_BYTES smaller than the Cache Writeback Granule (%d < %d)\n",
928 L1_CACHE_BYTES, cls);