2 * Ptrace user space interface.
4 * Copyright IBM Corp. 1999, 2010
5 * Author(s): Denis Joseph Barrow
6 * Martin Schwidefsky (schwidefsky@de.ibm.com)
9 #include <linux/kernel.h>
10 #include <linux/sched.h>
12 #include <linux/smp.h>
13 #include <linux/errno.h>
14 #include <linux/ptrace.h>
15 #include <linux/user.h>
16 #include <linux/security.h>
17 #include <linux/audit.h>
18 #include <linux/signal.h>
19 #include <linux/elf.h>
20 #include <linux/regset.h>
21 #include <linux/tracehook.h>
22 #include <linux/seccomp.h>
23 #include <linux/compat.h>
24 #include <trace/syscall.h>
25 #include <asm/segment.h>
27 #include <asm/pgtable.h>
28 #include <asm/pgalloc.h>
29 #include <asm/uaccess.h>
30 #include <asm/unistd.h>
31 #include <asm/switch_to.h>
35 #include "compat_ptrace.h"
38 #define CREATE_TRACE_POINTS
39 #include <trace/events/syscalls.h>
47 REGSET_GENERAL_EXTENDED
,
50 void update_cr_regs(struct task_struct
*task
)
52 struct pt_regs
*regs
= task_pt_regs(task
);
53 struct thread_struct
*thread
= &task
->thread
;
54 struct per_regs old
, new;
57 /* Take care of the enable/disable of transactional execution. */
59 unsigned long cr
, cr_new
;
61 __ctl_store(cr
, 0, 0);
62 /* Set or clear transaction execution TXC bit 8. */
63 cr_new
= cr
| (1UL << 55);
64 if (task
->thread
.per_flags
& PER_FLAG_NO_TE
)
65 cr_new
&= ~(1UL << 55);
67 __ctl_load(cr_new
, 0, 0);
68 /* Set or clear transaction execution TDC bits 62 and 63. */
69 __ctl_store(cr
, 2, 2);
71 if (task
->thread
.per_flags
& PER_FLAG_TE_ABORT_RAND
) {
72 if (task
->thread
.per_flags
& PER_FLAG_TE_ABORT_RAND_TEND
)
78 __ctl_load(cr_new
, 2, 2);
81 /* Copy user specified PER registers */
82 new.control
= thread
->per_user
.control
;
83 new.start
= thread
->per_user
.start
;
84 new.end
= thread
->per_user
.end
;
86 /* merge TIF_SINGLE_STEP into user specified PER registers. */
87 if (test_tsk_thread_flag(task
, TIF_SINGLE_STEP
)) {
88 if (test_tsk_thread_flag(task
, TIF_BLOCK_STEP
))
89 new.control
|= PER_EVENT_BRANCH
;
91 new.control
|= PER_EVENT_IFETCH
;
93 new.control
|= PER_CONTROL_SUSPENSION
;
94 new.control
|= PER_EVENT_TRANSACTION_END
;
97 new.end
= PSW_ADDR_INSN
;
100 /* Take care of the PER enablement bit in the PSW. */
101 if (!(new.control
& PER_EVENT_MASK
)) {
102 regs
->psw
.mask
&= ~PSW_MASK_PER
;
105 regs
->psw
.mask
|= PSW_MASK_PER
;
106 __ctl_store(old
, 9, 11);
107 if (memcmp(&new, &old
, sizeof(struct per_regs
)) != 0)
108 __ctl_load(new, 9, 11);
111 void user_enable_single_step(struct task_struct
*task
)
113 clear_tsk_thread_flag(task
, TIF_BLOCK_STEP
);
114 set_tsk_thread_flag(task
, TIF_SINGLE_STEP
);
117 void user_disable_single_step(struct task_struct
*task
)
119 clear_tsk_thread_flag(task
, TIF_BLOCK_STEP
);
120 clear_tsk_thread_flag(task
, TIF_SINGLE_STEP
);
123 void user_enable_block_step(struct task_struct
*task
)
125 set_tsk_thread_flag(task
, TIF_SINGLE_STEP
);
126 set_tsk_thread_flag(task
, TIF_BLOCK_STEP
);
130 * Called by kernel/ptrace.c when detaching..
132 * Clear all debugging related fields.
134 void ptrace_disable(struct task_struct
*task
)
136 memset(&task
->thread
.per_user
, 0, sizeof(task
->thread
.per_user
));
137 memset(&task
->thread
.per_event
, 0, sizeof(task
->thread
.per_event
));
138 clear_tsk_thread_flag(task
, TIF_SINGLE_STEP
);
139 clear_pt_regs_flag(task_pt_regs(task
), PIF_PER_TRAP
);
140 task
->thread
.per_flags
= 0;
144 # define __ADDR_MASK 3
146 # define __ADDR_MASK 7
149 static inline unsigned long __peek_user_per(struct task_struct
*child
,
152 struct per_struct_kernel
*dummy
= NULL
;
154 if (addr
== (addr_t
) &dummy
->cr9
)
155 /* Control bits of the active per set. */
156 return test_thread_flag(TIF_SINGLE_STEP
) ?
157 PER_EVENT_IFETCH
: child
->thread
.per_user
.control
;
158 else if (addr
== (addr_t
) &dummy
->cr10
)
159 /* Start address of the active per set. */
160 return test_thread_flag(TIF_SINGLE_STEP
) ?
161 0 : child
->thread
.per_user
.start
;
162 else if (addr
== (addr_t
) &dummy
->cr11
)
163 /* End address of the active per set. */
164 return test_thread_flag(TIF_SINGLE_STEP
) ?
165 PSW_ADDR_INSN
: child
->thread
.per_user
.end
;
166 else if (addr
== (addr_t
) &dummy
->bits
)
167 /* Single-step bit. */
168 return test_thread_flag(TIF_SINGLE_STEP
) ?
169 (1UL << (BITS_PER_LONG
- 1)) : 0;
170 else if (addr
== (addr_t
) &dummy
->starting_addr
)
171 /* Start address of the user specified per set. */
172 return child
->thread
.per_user
.start
;
173 else if (addr
== (addr_t
) &dummy
->ending_addr
)
174 /* End address of the user specified per set. */
175 return child
->thread
.per_user
.end
;
176 else if (addr
== (addr_t
) &dummy
->perc_atmid
)
177 /* PER code, ATMID and AI of the last PER trap */
178 return (unsigned long)
179 child
->thread
.per_event
.cause
<< (BITS_PER_LONG
- 16);
180 else if (addr
== (addr_t
) &dummy
->address
)
181 /* Address of the last PER trap */
182 return child
->thread
.per_event
.address
;
183 else if (addr
== (addr_t
) &dummy
->access_id
)
184 /* Access id of the last PER trap */
185 return (unsigned long)
186 child
->thread
.per_event
.paid
<< (BITS_PER_LONG
- 8);
191 * Read the word at offset addr from the user area of a process. The
192 * trouble here is that the information is littered over different
193 * locations. The process registers are found on the kernel stack,
194 * the floating point stuff and the trace settings are stored in
195 * the task structure. In addition the different structures in
196 * struct user contain pad bytes that should be read as zeroes.
199 static unsigned long __peek_user(struct task_struct
*child
, addr_t addr
)
201 struct user
*dummy
= NULL
;
204 if (addr
< (addr_t
) &dummy
->regs
.acrs
) {
206 * psw and gprs are stored on the stack
208 tmp
= *(addr_t
*)((addr_t
) &task_pt_regs(child
)->psw
+ addr
);
209 if (addr
== (addr_t
) &dummy
->regs
.psw
.mask
) {
210 /* Return a clean psw mask. */
211 tmp
&= PSW_MASK_USER
| PSW_MASK_RI
;
212 tmp
|= PSW_USER_BITS
;
215 } else if (addr
< (addr_t
) &dummy
->regs
.orig_gpr2
) {
217 * access registers are stored in the thread structure
219 offset
= addr
- (addr_t
) &dummy
->regs
.acrs
;
222 * Very special case: old & broken 64 bit gdb reading
223 * from acrs[15]. Result is a 64 bit value. Read the
224 * 32 bit acrs[15] value and shift it by 32. Sick...
226 if (addr
== (addr_t
) &dummy
->regs
.acrs
[15])
227 tmp
= ((unsigned long) child
->thread
.acrs
[15]) << 32;
230 tmp
= *(addr_t
*)((addr_t
) &child
->thread
.acrs
+ offset
);
232 } else if (addr
== (addr_t
) &dummy
->regs
.orig_gpr2
) {
234 * orig_gpr2 is stored on the kernel stack
236 tmp
= (addr_t
) task_pt_regs(child
)->orig_gpr2
;
238 } else if (addr
< (addr_t
) &dummy
->regs
.fp_regs
) {
240 * prevent reads of padding hole between
241 * orig_gpr2 and fp_regs on s390.
245 } else if (addr
< (addr_t
) (&dummy
->regs
.fp_regs
+ 1)) {
247 * floating point regs. are stored in the thread structure
249 offset
= addr
- (addr_t
) &dummy
->regs
.fp_regs
;
250 tmp
= *(addr_t
*)((addr_t
) &child
->thread
.fp_regs
+ offset
);
251 if (addr
== (addr_t
) &dummy
->regs
.fp_regs
.fpc
)
252 tmp
<<= BITS_PER_LONG
- 32;
254 } else if (addr
< (addr_t
) (&dummy
->regs
.per_info
+ 1)) {
256 * Handle access to the per_info structure.
258 addr
-= (addr_t
) &dummy
->regs
.per_info
;
259 tmp
= __peek_user_per(child
, addr
);
268 peek_user(struct task_struct
*child
, addr_t addr
, addr_t data
)
273 * Stupid gdb peeks/pokes the access registers in 64 bit with
274 * an alignment of 4. Programmers from hell...
278 if (addr
>= (addr_t
) &((struct user
*) NULL
)->regs
.acrs
&&
279 addr
< (addr_t
) &((struct user
*) NULL
)->regs
.orig_gpr2
)
282 if ((addr
& mask
) || addr
> sizeof(struct user
) - __ADDR_MASK
)
285 tmp
= __peek_user(child
, addr
);
286 return put_user(tmp
, (addr_t __user
*) data
);
289 static inline void __poke_user_per(struct task_struct
*child
,
290 addr_t addr
, addr_t data
)
292 struct per_struct_kernel
*dummy
= NULL
;
295 * There are only three fields in the per_info struct that the
296 * debugger user can write to.
297 * 1) cr9: the debugger wants to set a new PER event mask
298 * 2) starting_addr: the debugger wants to set a new starting
299 * address to use with the PER event mask.
300 * 3) ending_addr: the debugger wants to set a new ending
301 * address to use with the PER event mask.
302 * The user specified PER event mask and the start and end
303 * addresses are used only if single stepping is not in effect.
304 * Writes to any other field in per_info are ignored.
306 if (addr
== (addr_t
) &dummy
->cr9
)
307 /* PER event mask of the user specified per set. */
308 child
->thread
.per_user
.control
=
309 data
& (PER_EVENT_MASK
| PER_CONTROL_MASK
);
310 else if (addr
== (addr_t
) &dummy
->starting_addr
)
311 /* Starting address of the user specified per set. */
312 child
->thread
.per_user
.start
= data
;
313 else if (addr
== (addr_t
) &dummy
->ending_addr
)
314 /* Ending address of the user specified per set. */
315 child
->thread
.per_user
.end
= data
;
319 * Write a word to the user area of a process at location addr. This
320 * operation does have an additional problem compared to peek_user.
321 * Stores to the program status word and on the floating point
322 * control register needs to get checked for validity.
324 static int __poke_user(struct task_struct
*child
, addr_t addr
, addr_t data
)
326 struct user
*dummy
= NULL
;
329 if (addr
< (addr_t
) &dummy
->regs
.acrs
) {
331 * psw and gprs are stored on the stack
333 if (addr
== (addr_t
) &dummy
->regs
.psw
.mask
) {
334 unsigned long mask
= PSW_MASK_USER
;
336 mask
|= is_ri_task(child
) ? PSW_MASK_RI
: 0;
337 if ((data
& ~mask
) != PSW_USER_BITS
)
339 if ((data
& PSW_MASK_EA
) && !(data
& PSW_MASK_BA
))
342 *(addr_t
*)((addr_t
) &task_pt_regs(child
)->psw
+ addr
) = data
;
344 } else if (addr
< (addr_t
) (&dummy
->regs
.orig_gpr2
)) {
346 * access registers are stored in the thread structure
348 offset
= addr
- (addr_t
) &dummy
->regs
.acrs
;
351 * Very special case: old & broken 64 bit gdb writing
352 * to acrs[15] with a 64 bit value. Ignore the lower
353 * half of the value and write the upper 32 bit to
356 if (addr
== (addr_t
) &dummy
->regs
.acrs
[15])
357 child
->thread
.acrs
[15] = (unsigned int) (data
>> 32);
360 *(addr_t
*)((addr_t
) &child
->thread
.acrs
+ offset
) = data
;
362 } else if (addr
== (addr_t
) &dummy
->regs
.orig_gpr2
) {
364 * orig_gpr2 is stored on the kernel stack
366 task_pt_regs(child
)->orig_gpr2
= data
;
368 } else if (addr
< (addr_t
) &dummy
->regs
.fp_regs
) {
370 * prevent writes of padding hole between
371 * orig_gpr2 and fp_regs on s390.
375 } else if (addr
< (addr_t
) (&dummy
->regs
.fp_regs
+ 1)) {
377 * floating point regs. are stored in the thread structure
379 if (addr
== (addr_t
) &dummy
->regs
.fp_regs
.fpc
)
380 if ((unsigned int) data
!= 0 ||
381 test_fp_ctl(data
>> (BITS_PER_LONG
- 32)))
383 offset
= addr
- (addr_t
) &dummy
->regs
.fp_regs
;
384 *(addr_t
*)((addr_t
) &child
->thread
.fp_regs
+ offset
) = data
;
386 } else if (addr
< (addr_t
) (&dummy
->regs
.per_info
+ 1)) {
388 * Handle access to the per_info structure.
390 addr
-= (addr_t
) &dummy
->regs
.per_info
;
391 __poke_user_per(child
, addr
, data
);
398 static int poke_user(struct task_struct
*child
, addr_t addr
, addr_t data
)
403 * Stupid gdb peeks/pokes the access registers in 64 bit with
404 * an alignment of 4. Programmers from hell indeed...
408 if (addr
>= (addr_t
) &((struct user
*) NULL
)->regs
.acrs
&&
409 addr
< (addr_t
) &((struct user
*) NULL
)->regs
.orig_gpr2
)
412 if ((addr
& mask
) || addr
> sizeof(struct user
) - __ADDR_MASK
)
415 return __poke_user(child
, addr
, data
);
418 long arch_ptrace(struct task_struct
*child
, long request
,
419 unsigned long addr
, unsigned long data
)
426 /* read the word at location addr in the USER area. */
427 return peek_user(child
, addr
, data
);
430 /* write the word at location addr in the USER area */
431 return poke_user(child
, addr
, data
);
433 case PTRACE_PEEKUSR_AREA
:
434 case PTRACE_POKEUSR_AREA
:
435 if (copy_from_user(&parea
, (void __force __user
*) addr
,
438 addr
= parea
.kernel_addr
;
439 data
= parea
.process_addr
;
441 while (copied
< parea
.len
) {
442 if (request
== PTRACE_PEEKUSR_AREA
)
443 ret
= peek_user(child
, addr
, data
);
447 (addr_t __force __user
*) data
))
449 ret
= poke_user(child
, addr
, utmp
);
453 addr
+= sizeof(unsigned long);
454 data
+= sizeof(unsigned long);
455 copied
+= sizeof(unsigned long);
458 case PTRACE_GET_LAST_BREAK
:
459 put_user(task_thread_info(child
)->last_break
,
460 (unsigned long __user
*) data
);
462 case PTRACE_ENABLE_TE
:
465 child
->thread
.per_flags
&= ~PER_FLAG_NO_TE
;
467 case PTRACE_DISABLE_TE
:
470 child
->thread
.per_flags
|= PER_FLAG_NO_TE
;
471 child
->thread
.per_flags
&= ~PER_FLAG_TE_ABORT_RAND
;
473 case PTRACE_TE_ABORT_RAND
:
474 if (!MACHINE_HAS_TE
|| (child
->thread
.per_flags
& PER_FLAG_NO_TE
))
478 child
->thread
.per_flags
&= ~PER_FLAG_TE_ABORT_RAND
;
481 child
->thread
.per_flags
|= PER_FLAG_TE_ABORT_RAND
;
482 child
->thread
.per_flags
|= PER_FLAG_TE_ABORT_RAND_TEND
;
485 child
->thread
.per_flags
|= PER_FLAG_TE_ABORT_RAND
;
486 child
->thread
.per_flags
&= ~PER_FLAG_TE_ABORT_RAND_TEND
;
493 /* Removing high order bit from addr (only for 31 bit). */
494 addr
&= PSW_ADDR_INSN
;
495 return ptrace_request(child
, request
, addr
, data
);
501 * Now the fun part starts... a 31 bit program running in the
502 * 31 bit emulation tracing another program. PTRACE_PEEKTEXT,
503 * PTRACE_PEEKDATA, PTRACE_POKETEXT and PTRACE_POKEDATA are easy
504 * to handle, the difference to the 64 bit versions of the requests
505 * is that the access is done in multiples of 4 byte instead of
506 * 8 bytes (sizeof(unsigned long) on 31/64 bit).
507 * The ugly part are PTRACE_PEEKUSR, PTRACE_PEEKUSR_AREA,
508 * PTRACE_POKEUSR and PTRACE_POKEUSR_AREA. If the traced program
509 * is a 31 bit program too, the content of struct user can be
510 * emulated. A 31 bit program peeking into the struct user of
511 * a 64 bit program is a no-no.
515 * Same as peek_user_per but for a 31 bit program.
517 static inline __u32
__peek_user_per_compat(struct task_struct
*child
,
520 struct compat_per_struct_kernel
*dummy32
= NULL
;
522 if (addr
== (addr_t
) &dummy32
->cr9
)
523 /* Control bits of the active per set. */
524 return (__u32
) test_thread_flag(TIF_SINGLE_STEP
) ?
525 PER_EVENT_IFETCH
: child
->thread
.per_user
.control
;
526 else if (addr
== (addr_t
) &dummy32
->cr10
)
527 /* Start address of the active per set. */
528 return (__u32
) test_thread_flag(TIF_SINGLE_STEP
) ?
529 0 : child
->thread
.per_user
.start
;
530 else if (addr
== (addr_t
) &dummy32
->cr11
)
531 /* End address of the active per set. */
532 return test_thread_flag(TIF_SINGLE_STEP
) ?
533 PSW32_ADDR_INSN
: child
->thread
.per_user
.end
;
534 else if (addr
== (addr_t
) &dummy32
->bits
)
535 /* Single-step bit. */
536 return (__u32
) test_thread_flag(TIF_SINGLE_STEP
) ?
538 else if (addr
== (addr_t
) &dummy32
->starting_addr
)
539 /* Start address of the user specified per set. */
540 return (__u32
) child
->thread
.per_user
.start
;
541 else if (addr
== (addr_t
) &dummy32
->ending_addr
)
542 /* End address of the user specified per set. */
543 return (__u32
) child
->thread
.per_user
.end
;
544 else if (addr
== (addr_t
) &dummy32
->perc_atmid
)
545 /* PER code, ATMID and AI of the last PER trap */
546 return (__u32
) child
->thread
.per_event
.cause
<< 16;
547 else if (addr
== (addr_t
) &dummy32
->address
)
548 /* Address of the last PER trap */
549 return (__u32
) child
->thread
.per_event
.address
;
550 else if (addr
== (addr_t
) &dummy32
->access_id
)
551 /* Access id of the last PER trap */
552 return (__u32
) child
->thread
.per_event
.paid
<< 24;
557 * Same as peek_user but for a 31 bit program.
559 static u32
__peek_user_compat(struct task_struct
*child
, addr_t addr
)
561 struct compat_user
*dummy32
= NULL
;
565 if (addr
< (addr_t
) &dummy32
->regs
.acrs
) {
566 struct pt_regs
*regs
= task_pt_regs(child
);
568 * psw and gprs are stored on the stack
570 if (addr
== (addr_t
) &dummy32
->regs
.psw
.mask
) {
571 /* Fake a 31 bit psw mask. */
572 tmp
= (__u32
)(regs
->psw
.mask
>> 32);
573 tmp
&= PSW32_MASK_USER
| PSW32_MASK_RI
;
574 tmp
|= PSW32_USER_BITS
;
575 } else if (addr
== (addr_t
) &dummy32
->regs
.psw
.addr
) {
576 /* Fake a 31 bit psw address. */
577 tmp
= (__u32
) regs
->psw
.addr
|
578 (__u32
)(regs
->psw
.mask
& PSW_MASK_BA
);
581 tmp
= *(__u32
*)((addr_t
) ®s
->psw
+ addr
*2 + 4);
583 } else if (addr
< (addr_t
) (&dummy32
->regs
.orig_gpr2
)) {
585 * access registers are stored in the thread structure
587 offset
= addr
- (addr_t
) &dummy32
->regs
.acrs
;
588 tmp
= *(__u32
*)((addr_t
) &child
->thread
.acrs
+ offset
);
590 } else if (addr
== (addr_t
) (&dummy32
->regs
.orig_gpr2
)) {
592 * orig_gpr2 is stored on the kernel stack
594 tmp
= *(__u32
*)((addr_t
) &task_pt_regs(child
)->orig_gpr2
+ 4);
596 } else if (addr
< (addr_t
) &dummy32
->regs
.fp_regs
) {
598 * prevent reads of padding hole between
599 * orig_gpr2 and fp_regs on s390.
603 } else if (addr
< (addr_t
) (&dummy32
->regs
.fp_regs
+ 1)) {
605 * floating point regs. are stored in the thread structure
607 offset
= addr
- (addr_t
) &dummy32
->regs
.fp_regs
;
608 tmp
= *(__u32
*)((addr_t
) &child
->thread
.fp_regs
+ offset
);
610 } else if (addr
< (addr_t
) (&dummy32
->regs
.per_info
+ 1)) {
612 * Handle access to the per_info structure.
614 addr
-= (addr_t
) &dummy32
->regs
.per_info
;
615 tmp
= __peek_user_per_compat(child
, addr
);
623 static int peek_user_compat(struct task_struct
*child
,
624 addr_t addr
, addr_t data
)
628 if (!is_compat_task() || (addr
& 3) || addr
> sizeof(struct user
) - 3)
631 tmp
= __peek_user_compat(child
, addr
);
632 return put_user(tmp
, (__u32 __user
*) data
);
636 * Same as poke_user_per but for a 31 bit program.
638 static inline void __poke_user_per_compat(struct task_struct
*child
,
639 addr_t addr
, __u32 data
)
641 struct compat_per_struct_kernel
*dummy32
= NULL
;
643 if (addr
== (addr_t
) &dummy32
->cr9
)
644 /* PER event mask of the user specified per set. */
645 child
->thread
.per_user
.control
=
646 data
& (PER_EVENT_MASK
| PER_CONTROL_MASK
);
647 else if (addr
== (addr_t
) &dummy32
->starting_addr
)
648 /* Starting address of the user specified per set. */
649 child
->thread
.per_user
.start
= data
;
650 else if (addr
== (addr_t
) &dummy32
->ending_addr
)
651 /* Ending address of the user specified per set. */
652 child
->thread
.per_user
.end
= data
;
656 * Same as poke_user but for a 31 bit program.
658 static int __poke_user_compat(struct task_struct
*child
,
659 addr_t addr
, addr_t data
)
661 struct compat_user
*dummy32
= NULL
;
662 __u32 tmp
= (__u32
) data
;
665 if (addr
< (addr_t
) &dummy32
->regs
.acrs
) {
666 struct pt_regs
*regs
= task_pt_regs(child
);
668 * psw, gprs, acrs and orig_gpr2 are stored on the stack
670 if (addr
== (addr_t
) &dummy32
->regs
.psw
.mask
) {
671 __u32 mask
= PSW32_MASK_USER
;
673 mask
|= is_ri_task(child
) ? PSW32_MASK_RI
: 0;
674 /* Build a 64 bit psw mask from 31 bit mask. */
675 if ((tmp
& ~mask
) != PSW32_USER_BITS
)
676 /* Invalid psw mask. */
678 regs
->psw
.mask
= (regs
->psw
.mask
& ~PSW_MASK_USER
) |
679 (regs
->psw
.mask
& PSW_MASK_BA
) |
680 (__u64
)(tmp
& mask
) << 32;
681 } else if (addr
== (addr_t
) &dummy32
->regs
.psw
.addr
) {
682 /* Build a 64 bit psw address from 31 bit address. */
683 regs
->psw
.addr
= (__u64
) tmp
& PSW32_ADDR_INSN
;
684 /* Transfer 31 bit amode bit to psw mask. */
685 regs
->psw
.mask
= (regs
->psw
.mask
& ~PSW_MASK_BA
) |
686 (__u64
)(tmp
& PSW32_ADDR_AMODE
);
689 *(__u32
*)((addr_t
) ®s
->psw
+ addr
*2 + 4) = tmp
;
691 } else if (addr
< (addr_t
) (&dummy32
->regs
.orig_gpr2
)) {
693 * access registers are stored in the thread structure
695 offset
= addr
- (addr_t
) &dummy32
->regs
.acrs
;
696 *(__u32
*)((addr_t
) &child
->thread
.acrs
+ offset
) = tmp
;
698 } else if (addr
== (addr_t
) (&dummy32
->regs
.orig_gpr2
)) {
700 * orig_gpr2 is stored on the kernel stack
702 *(__u32
*)((addr_t
) &task_pt_regs(child
)->orig_gpr2
+ 4) = tmp
;
704 } else if (addr
< (addr_t
) &dummy32
->regs
.fp_regs
) {
706 * prevent writess of padding hole between
707 * orig_gpr2 and fp_regs on s390.
711 } else if (addr
< (addr_t
) (&dummy32
->regs
.fp_regs
+ 1)) {
713 * floating point regs. are stored in the thread structure
715 if (addr
== (addr_t
) &dummy32
->regs
.fp_regs
.fpc
&&
718 offset
= addr
- (addr_t
) &dummy32
->regs
.fp_regs
;
719 *(__u32
*)((addr_t
) &child
->thread
.fp_regs
+ offset
) = tmp
;
721 } else if (addr
< (addr_t
) (&dummy32
->regs
.per_info
+ 1)) {
723 * Handle access to the per_info structure.
725 addr
-= (addr_t
) &dummy32
->regs
.per_info
;
726 __poke_user_per_compat(child
, addr
, data
);
732 static int poke_user_compat(struct task_struct
*child
,
733 addr_t addr
, addr_t data
)
735 if (!is_compat_task() || (addr
& 3) ||
736 addr
> sizeof(struct compat_user
) - 3)
739 return __poke_user_compat(child
, addr
, data
);
742 long compat_arch_ptrace(struct task_struct
*child
, compat_long_t request
,
743 compat_ulong_t caddr
, compat_ulong_t cdata
)
745 unsigned long addr
= caddr
;
746 unsigned long data
= cdata
;
747 compat_ptrace_area parea
;
752 /* read the word at location addr in the USER area. */
753 return peek_user_compat(child
, addr
, data
);
756 /* write the word at location addr in the USER area */
757 return poke_user_compat(child
, addr
, data
);
759 case PTRACE_PEEKUSR_AREA
:
760 case PTRACE_POKEUSR_AREA
:
761 if (copy_from_user(&parea
, (void __force __user
*) addr
,
764 addr
= parea
.kernel_addr
;
765 data
= parea
.process_addr
;
767 while (copied
< parea
.len
) {
768 if (request
== PTRACE_PEEKUSR_AREA
)
769 ret
= peek_user_compat(child
, addr
, data
);
773 (__u32 __force __user
*) data
))
775 ret
= poke_user_compat(child
, addr
, utmp
);
779 addr
+= sizeof(unsigned int);
780 data
+= sizeof(unsigned int);
781 copied
+= sizeof(unsigned int);
784 case PTRACE_GET_LAST_BREAK
:
785 put_user(task_thread_info(child
)->last_break
,
786 (unsigned int __user
*) data
);
789 return compat_ptrace_request(child
, request
, addr
, data
);
793 asmlinkage
long do_syscall_trace_enter(struct pt_regs
*regs
)
797 /* Do the secure computing check first. */
798 if (secure_computing(regs
->gprs
[2])) {
799 /* seccomp failures shouldn't expose any additional code. */
805 * The sysc_tracesys code in entry.S stored the system
806 * call number to gprs[2].
808 if (test_thread_flag(TIF_SYSCALL_TRACE
) &&
809 (tracehook_report_syscall_entry(regs
) ||
810 regs
->gprs
[2] >= NR_syscalls
)) {
812 * Tracing decided this syscall should not happen or the
813 * debugger stored an invalid system call number. Skip
814 * the system call and the system call restart handling.
816 clear_pt_regs_flag(regs
, PIF_SYSCALL
);
820 if (unlikely(test_thread_flag(TIF_SYSCALL_TRACEPOINT
)))
821 trace_sys_enter(regs
, regs
->gprs
[2]);
823 audit_syscall_entry(is_compat_task() ?
824 AUDIT_ARCH_S390
: AUDIT_ARCH_S390X
,
825 regs
->gprs
[2], regs
->orig_gpr2
,
826 regs
->gprs
[3], regs
->gprs
[4],
829 return ret
?: regs
->gprs
[2];
832 asmlinkage
void do_syscall_trace_exit(struct pt_regs
*regs
)
834 audit_syscall_exit(regs
);
836 if (unlikely(test_thread_flag(TIF_SYSCALL_TRACEPOINT
)))
837 trace_sys_exit(regs
, regs
->gprs
[2]);
839 if (test_thread_flag(TIF_SYSCALL_TRACE
))
840 tracehook_report_syscall_exit(regs
, 0);
844 * user_regset definitions.
847 static int s390_regs_get(struct task_struct
*target
,
848 const struct user_regset
*regset
,
849 unsigned int pos
, unsigned int count
,
850 void *kbuf
, void __user
*ubuf
)
852 if (target
== current
)
853 save_access_regs(target
->thread
.acrs
);
856 unsigned long *k
= kbuf
;
858 *k
++ = __peek_user(target
, pos
);
863 unsigned long __user
*u
= ubuf
;
865 if (__put_user(__peek_user(target
, pos
), u
++))
874 static int s390_regs_set(struct task_struct
*target
,
875 const struct user_regset
*regset
,
876 unsigned int pos
, unsigned int count
,
877 const void *kbuf
, const void __user
*ubuf
)
881 if (target
== current
)
882 save_access_regs(target
->thread
.acrs
);
885 const unsigned long *k
= kbuf
;
886 while (count
> 0 && !rc
) {
887 rc
= __poke_user(target
, pos
, *k
++);
892 const unsigned long __user
*u
= ubuf
;
893 while (count
> 0 && !rc
) {
895 rc
= __get_user(word
, u
++);
898 rc
= __poke_user(target
, pos
, word
);
904 if (rc
== 0 && target
== current
)
905 restore_access_regs(target
->thread
.acrs
);
910 static int s390_fpregs_get(struct task_struct
*target
,
911 const struct user_regset
*regset
, unsigned int pos
,
912 unsigned int count
, void *kbuf
, void __user
*ubuf
)
914 if (target
== current
) {
915 save_fp_ctl(&target
->thread
.fp_regs
.fpc
);
916 save_fp_regs(target
->thread
.fp_regs
.fprs
);
919 return user_regset_copyout(&pos
, &count
, &kbuf
, &ubuf
,
920 &target
->thread
.fp_regs
, 0, -1);
923 static int s390_fpregs_set(struct task_struct
*target
,
924 const struct user_regset
*regset
, unsigned int pos
,
925 unsigned int count
, const void *kbuf
,
926 const void __user
*ubuf
)
930 if (target
== current
) {
931 save_fp_ctl(&target
->thread
.fp_regs
.fpc
);
932 save_fp_regs(target
->thread
.fp_regs
.fprs
);
935 /* If setting FPC, must validate it first. */
936 if (count
> 0 && pos
< offsetof(s390_fp_regs
, fprs
)) {
937 u32 ufpc
[2] = { target
->thread
.fp_regs
.fpc
, 0 };
938 rc
= user_regset_copyin(&pos
, &count
, &kbuf
, &ubuf
, &ufpc
,
939 0, offsetof(s390_fp_regs
, fprs
));
942 if (ufpc
[1] != 0 || test_fp_ctl(ufpc
[0]))
944 target
->thread
.fp_regs
.fpc
= ufpc
[0];
947 if (rc
== 0 && count
> 0)
948 rc
= user_regset_copyin(&pos
, &count
, &kbuf
, &ubuf
,
949 target
->thread
.fp_regs
.fprs
,
950 offsetof(s390_fp_regs
, fprs
), -1);
952 if (rc
== 0 && target
== current
) {
953 restore_fp_ctl(&target
->thread
.fp_regs
.fpc
);
954 restore_fp_regs(target
->thread
.fp_regs
.fprs
);
962 static int s390_last_break_get(struct task_struct
*target
,
963 const struct user_regset
*regset
,
964 unsigned int pos
, unsigned int count
,
965 void *kbuf
, void __user
*ubuf
)
969 unsigned long *k
= kbuf
;
970 *k
= task_thread_info(target
)->last_break
;
972 unsigned long __user
*u
= ubuf
;
973 if (__put_user(task_thread_info(target
)->last_break
, u
))
980 static int s390_last_break_set(struct task_struct
*target
,
981 const struct user_regset
*regset
,
982 unsigned int pos
, unsigned int count
,
983 const void *kbuf
, const void __user
*ubuf
)
988 static int s390_tdb_get(struct task_struct
*target
,
989 const struct user_regset
*regset
,
990 unsigned int pos
, unsigned int count
,
991 void *kbuf
, void __user
*ubuf
)
993 struct pt_regs
*regs
= task_pt_regs(target
);
996 if (!(regs
->int_code
& 0x200))
998 data
= target
->thread
.trap_tdb
;
999 return user_regset_copyout(&pos
, &count
, &kbuf
, &ubuf
, data
, 0, 256);
1002 static int s390_tdb_set(struct task_struct
*target
,
1003 const struct user_regset
*regset
,
1004 unsigned int pos
, unsigned int count
,
1005 const void *kbuf
, const void __user
*ubuf
)
1012 static int s390_system_call_get(struct task_struct
*target
,
1013 const struct user_regset
*regset
,
1014 unsigned int pos
, unsigned int count
,
1015 void *kbuf
, void __user
*ubuf
)
1017 unsigned int *data
= &task_thread_info(target
)->system_call
;
1018 return user_regset_copyout(&pos
, &count
, &kbuf
, &ubuf
,
1019 data
, 0, sizeof(unsigned int));
1022 static int s390_system_call_set(struct task_struct
*target
,
1023 const struct user_regset
*regset
,
1024 unsigned int pos
, unsigned int count
,
1025 const void *kbuf
, const void __user
*ubuf
)
1027 unsigned int *data
= &task_thread_info(target
)->system_call
;
1028 return user_regset_copyin(&pos
, &count
, &kbuf
, &ubuf
,
1029 data
, 0, sizeof(unsigned int));
1032 static const struct user_regset s390_regsets
[] = {
1033 [REGSET_GENERAL
] = {
1034 .core_note_type
= NT_PRSTATUS
,
1035 .n
= sizeof(s390_regs
) / sizeof(long),
1036 .size
= sizeof(long),
1037 .align
= sizeof(long),
1038 .get
= s390_regs_get
,
1039 .set
= s390_regs_set
,
1042 .core_note_type
= NT_PRFPREG
,
1043 .n
= sizeof(s390_fp_regs
) / sizeof(long),
1044 .size
= sizeof(long),
1045 .align
= sizeof(long),
1046 .get
= s390_fpregs_get
,
1047 .set
= s390_fpregs_set
,
1050 [REGSET_LAST_BREAK
] = {
1051 .core_note_type
= NT_S390_LAST_BREAK
,
1053 .size
= sizeof(long),
1054 .align
= sizeof(long),
1055 .get
= s390_last_break_get
,
1056 .set
= s390_last_break_set
,
1059 .core_note_type
= NT_S390_TDB
,
1063 .get
= s390_tdb_get
,
1064 .set
= s390_tdb_set
,
1067 [REGSET_SYSTEM_CALL
] = {
1068 .core_note_type
= NT_S390_SYSTEM_CALL
,
1070 .size
= sizeof(unsigned int),
1071 .align
= sizeof(unsigned int),
1072 .get
= s390_system_call_get
,
1073 .set
= s390_system_call_set
,
1077 static const struct user_regset_view user_s390_view
= {
1078 .name
= UTS_MACHINE
,
1079 .e_machine
= EM_S390
,
1080 .regsets
= s390_regsets
,
1081 .n
= ARRAY_SIZE(s390_regsets
)
1084 #ifdef CONFIG_COMPAT
1085 static int s390_compat_regs_get(struct task_struct
*target
,
1086 const struct user_regset
*regset
,
1087 unsigned int pos
, unsigned int count
,
1088 void *kbuf
, void __user
*ubuf
)
1090 if (target
== current
)
1091 save_access_regs(target
->thread
.acrs
);
1094 compat_ulong_t
*k
= kbuf
;
1096 *k
++ = __peek_user_compat(target
, pos
);
1097 count
-= sizeof(*k
);
1101 compat_ulong_t __user
*u
= ubuf
;
1103 if (__put_user(__peek_user_compat(target
, pos
), u
++))
1105 count
-= sizeof(*u
);
1112 static int s390_compat_regs_set(struct task_struct
*target
,
1113 const struct user_regset
*regset
,
1114 unsigned int pos
, unsigned int count
,
1115 const void *kbuf
, const void __user
*ubuf
)
1119 if (target
== current
)
1120 save_access_regs(target
->thread
.acrs
);
1123 const compat_ulong_t
*k
= kbuf
;
1124 while (count
> 0 && !rc
) {
1125 rc
= __poke_user_compat(target
, pos
, *k
++);
1126 count
-= sizeof(*k
);
1130 const compat_ulong_t __user
*u
= ubuf
;
1131 while (count
> 0 && !rc
) {
1132 compat_ulong_t word
;
1133 rc
= __get_user(word
, u
++);
1136 rc
= __poke_user_compat(target
, pos
, word
);
1137 count
-= sizeof(*u
);
1142 if (rc
== 0 && target
== current
)
1143 restore_access_regs(target
->thread
.acrs
);
1148 static int s390_compat_regs_high_get(struct task_struct
*target
,
1149 const struct user_regset
*regset
,
1150 unsigned int pos
, unsigned int count
,
1151 void *kbuf
, void __user
*ubuf
)
1153 compat_ulong_t
*gprs_high
;
1155 gprs_high
= (compat_ulong_t
*)
1156 &task_pt_regs(target
)->gprs
[pos
/ sizeof(compat_ulong_t
)];
1158 compat_ulong_t
*k
= kbuf
;
1162 count
-= sizeof(*k
);
1165 compat_ulong_t __user
*u
= ubuf
;
1167 if (__put_user(*gprs_high
, u
++))
1170 count
-= sizeof(*u
);
1176 static int s390_compat_regs_high_set(struct task_struct
*target
,
1177 const struct user_regset
*regset
,
1178 unsigned int pos
, unsigned int count
,
1179 const void *kbuf
, const void __user
*ubuf
)
1181 compat_ulong_t
*gprs_high
;
1184 gprs_high
= (compat_ulong_t
*)
1185 &task_pt_regs(target
)->gprs
[pos
/ sizeof(compat_ulong_t
)];
1187 const compat_ulong_t
*k
= kbuf
;
1191 count
-= sizeof(*k
);
1194 const compat_ulong_t __user
*u
= ubuf
;
1195 while (count
> 0 && !rc
) {
1197 rc
= __get_user(word
, u
++);
1202 count
-= sizeof(*u
);
1209 static int s390_compat_last_break_get(struct task_struct
*target
,
1210 const struct user_regset
*regset
,
1211 unsigned int pos
, unsigned int count
,
1212 void *kbuf
, void __user
*ubuf
)
1214 compat_ulong_t last_break
;
1217 last_break
= task_thread_info(target
)->last_break
;
1219 unsigned long *k
= kbuf
;
1222 unsigned long __user
*u
= ubuf
;
1223 if (__put_user(last_break
, u
))
1230 static int s390_compat_last_break_set(struct task_struct
*target
,
1231 const struct user_regset
*regset
,
1232 unsigned int pos
, unsigned int count
,
1233 const void *kbuf
, const void __user
*ubuf
)
1238 static const struct user_regset s390_compat_regsets
[] = {
1239 [REGSET_GENERAL
] = {
1240 .core_note_type
= NT_PRSTATUS
,
1241 .n
= sizeof(s390_compat_regs
) / sizeof(compat_long_t
),
1242 .size
= sizeof(compat_long_t
),
1243 .align
= sizeof(compat_long_t
),
1244 .get
= s390_compat_regs_get
,
1245 .set
= s390_compat_regs_set
,
1248 .core_note_type
= NT_PRFPREG
,
1249 .n
= sizeof(s390_fp_regs
) / sizeof(compat_long_t
),
1250 .size
= sizeof(compat_long_t
),
1251 .align
= sizeof(compat_long_t
),
1252 .get
= s390_fpregs_get
,
1253 .set
= s390_fpregs_set
,
1255 [REGSET_LAST_BREAK
] = {
1256 .core_note_type
= NT_S390_LAST_BREAK
,
1258 .size
= sizeof(long),
1259 .align
= sizeof(long),
1260 .get
= s390_compat_last_break_get
,
1261 .set
= s390_compat_last_break_set
,
1264 .core_note_type
= NT_S390_TDB
,
1268 .get
= s390_tdb_get
,
1269 .set
= s390_tdb_set
,
1271 [REGSET_SYSTEM_CALL
] = {
1272 .core_note_type
= NT_S390_SYSTEM_CALL
,
1274 .size
= sizeof(compat_uint_t
),
1275 .align
= sizeof(compat_uint_t
),
1276 .get
= s390_system_call_get
,
1277 .set
= s390_system_call_set
,
1279 [REGSET_GENERAL_EXTENDED
] = {
1280 .core_note_type
= NT_S390_HIGH_GPRS
,
1281 .n
= sizeof(s390_compat_regs_high
) / sizeof(compat_long_t
),
1282 .size
= sizeof(compat_long_t
),
1283 .align
= sizeof(compat_long_t
),
1284 .get
= s390_compat_regs_high_get
,
1285 .set
= s390_compat_regs_high_set
,
1289 static const struct user_regset_view user_s390_compat_view
= {
1291 .e_machine
= EM_S390
,
1292 .regsets
= s390_compat_regsets
,
1293 .n
= ARRAY_SIZE(s390_compat_regsets
)
1297 const struct user_regset_view
*task_user_regset_view(struct task_struct
*task
)
1299 #ifdef CONFIG_COMPAT
1300 if (test_tsk_thread_flag(task
, TIF_31BIT
))
1301 return &user_s390_compat_view
;
1303 return &user_s390_view
;
1306 static const char *gpr_names
[NUM_GPRS
] = {
1307 "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
1308 "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15",
1311 unsigned long regs_get_register(struct pt_regs
*regs
, unsigned int offset
)
1313 if (offset
>= NUM_GPRS
)
1315 return regs
->gprs
[offset
];
1318 int regs_query_register_offset(const char *name
)
1320 unsigned long offset
;
1322 if (!name
|| *name
!= 'r')
1324 if (kstrtoul(name
+ 1, 10, &offset
))
1326 if (offset
>= NUM_GPRS
)
1331 const char *regs_query_register_name(unsigned int offset
)
1333 if (offset
>= NUM_GPRS
)
1335 return gpr_names
[offset
];
1338 static int regs_within_kernel_stack(struct pt_regs
*regs
, unsigned long addr
)
1340 unsigned long ksp
= kernel_stack_pointer(regs
);
1342 return (addr
& ~(THREAD_SIZE
- 1)) == (ksp
& ~(THREAD_SIZE
- 1));
1346 * regs_get_kernel_stack_nth() - get Nth entry of the stack
1347 * @regs:pt_regs which contains kernel stack pointer.
1348 * @n:stack entry number.
1350 * regs_get_kernel_stack_nth() returns @n th entry of the kernel stack which
1351 * is specifined by @regs. If the @n th entry is NOT in the kernel stack,
1354 unsigned long regs_get_kernel_stack_nth(struct pt_regs
*regs
, unsigned int n
)
1358 addr
= kernel_stack_pointer(regs
) + n
* sizeof(long);
1359 if (!regs_within_kernel_stack(regs
, addr
))
1361 return *(unsigned long *)addr
;