powerpc: don't bother with CHECK_FULL_REGS in sys_fork() et.al.
[deliverable/linux.git] / arch / powerpc / kernel / process.c
1 /*
2 * Derived from "arch/i386/kernel/process.c"
3 * Copyright (C) 1995 Linus Torvalds
4 *
5 * Updated and modified by Cort Dougan (cort@cs.nmt.edu) and
6 * Paul Mackerras (paulus@cs.anu.edu.au)
7 *
8 * PowerPC version
9 * Copyright (C) 1995-1996 Gary Thomas (gdt@linuxppc.org)
10 *
11 * This program is free software; you can redistribute it and/or
12 * modify it under the terms of the GNU General Public License
13 * as published by the Free Software Foundation; either version
14 * 2 of the License, or (at your option) any later version.
15 */
16
17 #include <linux/errno.h>
18 #include <linux/sched.h>
19 #include <linux/kernel.h>
20 #include <linux/mm.h>
21 #include <linux/smp.h>
22 #include <linux/stddef.h>
23 #include <linux/unistd.h>
24 #include <linux/ptrace.h>
25 #include <linux/slab.h>
26 #include <linux/user.h>
27 #include <linux/elf.h>
28 #include <linux/init.h>
29 #include <linux/prctl.h>
30 #include <linux/init_task.h>
31 #include <linux/export.h>
32 #include <linux/kallsyms.h>
33 #include <linux/mqueue.h>
34 #include <linux/hardirq.h>
35 #include <linux/utsname.h>
36 #include <linux/ftrace.h>
37 #include <linux/kernel_stat.h>
38 #include <linux/personality.h>
39 #include <linux/random.h>
40 #include <linux/hw_breakpoint.h>
41
42 #include <asm/pgtable.h>
43 #include <asm/uaccess.h>
44 #include <asm/io.h>
45 #include <asm/processor.h>
46 #include <asm/mmu.h>
47 #include <asm/prom.h>
48 #include <asm/machdep.h>
49 #include <asm/time.h>
50 #include <asm/runlatch.h>
51 #include <asm/syscalls.h>
52 #include <asm/switch_to.h>
53 #include <asm/debug.h>
54 #ifdef CONFIG_PPC64
55 #include <asm/firmware.h>
56 #endif
57 #include <linux/kprobes.h>
58 #include <linux/kdebug.h>
59
60 extern unsigned long _get_SP(void);
61
62 #ifndef CONFIG_SMP
63 struct task_struct *last_task_used_math = NULL;
64 struct task_struct *last_task_used_altivec = NULL;
65 struct task_struct *last_task_used_vsx = NULL;
66 struct task_struct *last_task_used_spe = NULL;
67 #endif
68
69 /*
70 * Make sure the floating-point register state in the
71 * the thread_struct is up to date for task tsk.
72 */
73 void flush_fp_to_thread(struct task_struct *tsk)
74 {
75 if (tsk->thread.regs) {
76 /*
77 * We need to disable preemption here because if we didn't,
78 * another process could get scheduled after the regs->msr
79 * test but before we have finished saving the FP registers
80 * to the thread_struct. That process could take over the
81 * FPU, and then when we get scheduled again we would store
82 * bogus values for the remaining FP registers.
83 */
84 preempt_disable();
85 if (tsk->thread.regs->msr & MSR_FP) {
86 #ifdef CONFIG_SMP
87 /*
88 * This should only ever be called for current or
89 * for a stopped child process. Since we save away
90 * the FP register state on context switch on SMP,
91 * there is something wrong if a stopped child appears
92 * to still have its FP state in the CPU registers.
93 */
94 BUG_ON(tsk != current);
95 #endif
96 giveup_fpu(tsk);
97 }
98 preempt_enable();
99 }
100 }
101 EXPORT_SYMBOL_GPL(flush_fp_to_thread);
102
103 void enable_kernel_fp(void)
104 {
105 WARN_ON(preemptible());
106
107 #ifdef CONFIG_SMP
108 if (current->thread.regs && (current->thread.regs->msr & MSR_FP))
109 giveup_fpu(current);
110 else
111 giveup_fpu(NULL); /* just enables FP for kernel */
112 #else
113 giveup_fpu(last_task_used_math);
114 #endif /* CONFIG_SMP */
115 }
116 EXPORT_SYMBOL(enable_kernel_fp);
117
118 #ifdef CONFIG_ALTIVEC
119 void enable_kernel_altivec(void)
120 {
121 WARN_ON(preemptible());
122
123 #ifdef CONFIG_SMP
124 if (current->thread.regs && (current->thread.regs->msr & MSR_VEC))
125 giveup_altivec(current);
126 else
127 giveup_altivec_notask();
128 #else
129 giveup_altivec(last_task_used_altivec);
130 #endif /* CONFIG_SMP */
131 }
132 EXPORT_SYMBOL(enable_kernel_altivec);
133
134 /*
135 * Make sure the VMX/Altivec register state in the
136 * the thread_struct is up to date for task tsk.
137 */
138 void flush_altivec_to_thread(struct task_struct *tsk)
139 {
140 if (tsk->thread.regs) {
141 preempt_disable();
142 if (tsk->thread.regs->msr & MSR_VEC) {
143 #ifdef CONFIG_SMP
144 BUG_ON(tsk != current);
145 #endif
146 giveup_altivec(tsk);
147 }
148 preempt_enable();
149 }
150 }
151 EXPORT_SYMBOL_GPL(flush_altivec_to_thread);
152 #endif /* CONFIG_ALTIVEC */
153
154 #ifdef CONFIG_VSX
155 #if 0
156 /* not currently used, but some crazy RAID module might want to later */
157 void enable_kernel_vsx(void)
158 {
159 WARN_ON(preemptible());
160
161 #ifdef CONFIG_SMP
162 if (current->thread.regs && (current->thread.regs->msr & MSR_VSX))
163 giveup_vsx(current);
164 else
165 giveup_vsx(NULL); /* just enable vsx for kernel - force */
166 #else
167 giveup_vsx(last_task_used_vsx);
168 #endif /* CONFIG_SMP */
169 }
170 EXPORT_SYMBOL(enable_kernel_vsx);
171 #endif
172
173 void giveup_vsx(struct task_struct *tsk)
174 {
175 giveup_fpu(tsk);
176 giveup_altivec(tsk);
177 __giveup_vsx(tsk);
178 }
179
180 void flush_vsx_to_thread(struct task_struct *tsk)
181 {
182 if (tsk->thread.regs) {
183 preempt_disable();
184 if (tsk->thread.regs->msr & MSR_VSX) {
185 #ifdef CONFIG_SMP
186 BUG_ON(tsk != current);
187 #endif
188 giveup_vsx(tsk);
189 }
190 preempt_enable();
191 }
192 }
193 EXPORT_SYMBOL_GPL(flush_vsx_to_thread);
194 #endif /* CONFIG_VSX */
195
196 #ifdef CONFIG_SPE
197
198 void enable_kernel_spe(void)
199 {
200 WARN_ON(preemptible());
201
202 #ifdef CONFIG_SMP
203 if (current->thread.regs && (current->thread.regs->msr & MSR_SPE))
204 giveup_spe(current);
205 else
206 giveup_spe(NULL); /* just enable SPE for kernel - force */
207 #else
208 giveup_spe(last_task_used_spe);
209 #endif /* __SMP __ */
210 }
211 EXPORT_SYMBOL(enable_kernel_spe);
212
213 void flush_spe_to_thread(struct task_struct *tsk)
214 {
215 if (tsk->thread.regs) {
216 preempt_disable();
217 if (tsk->thread.regs->msr & MSR_SPE) {
218 #ifdef CONFIG_SMP
219 BUG_ON(tsk != current);
220 #endif
221 tsk->thread.spefscr = mfspr(SPRN_SPEFSCR);
222 giveup_spe(tsk);
223 }
224 preempt_enable();
225 }
226 }
227 #endif /* CONFIG_SPE */
228
229 #ifndef CONFIG_SMP
230 /*
231 * If we are doing lazy switching of CPU state (FP, altivec or SPE),
232 * and the current task has some state, discard it.
233 */
234 void discard_lazy_cpu_state(void)
235 {
236 preempt_disable();
237 if (last_task_used_math == current)
238 last_task_used_math = NULL;
239 #ifdef CONFIG_ALTIVEC
240 if (last_task_used_altivec == current)
241 last_task_used_altivec = NULL;
242 #endif /* CONFIG_ALTIVEC */
243 #ifdef CONFIG_VSX
244 if (last_task_used_vsx == current)
245 last_task_used_vsx = NULL;
246 #endif /* CONFIG_VSX */
247 #ifdef CONFIG_SPE
248 if (last_task_used_spe == current)
249 last_task_used_spe = NULL;
250 #endif
251 preempt_enable();
252 }
253 #endif /* CONFIG_SMP */
254
255 #ifdef CONFIG_PPC_ADV_DEBUG_REGS
256 void do_send_trap(struct pt_regs *regs, unsigned long address,
257 unsigned long error_code, int signal_code, int breakpt)
258 {
259 siginfo_t info;
260
261 current->thread.trap_nr = signal_code;
262 if (notify_die(DIE_DABR_MATCH, "dabr_match", regs, error_code,
263 11, SIGSEGV) == NOTIFY_STOP)
264 return;
265
266 /* Deliver the signal to userspace */
267 info.si_signo = SIGTRAP;
268 info.si_errno = breakpt; /* breakpoint or watchpoint id */
269 info.si_code = signal_code;
270 info.si_addr = (void __user *)address;
271 force_sig_info(SIGTRAP, &info, current);
272 }
273 #else /* !CONFIG_PPC_ADV_DEBUG_REGS */
274 void do_dabr(struct pt_regs *regs, unsigned long address,
275 unsigned long error_code)
276 {
277 siginfo_t info;
278
279 current->thread.trap_nr = TRAP_HWBKPT;
280 if (notify_die(DIE_DABR_MATCH, "dabr_match", regs, error_code,
281 11, SIGSEGV) == NOTIFY_STOP)
282 return;
283
284 if (debugger_dabr_match(regs))
285 return;
286
287 /* Clear the DABR */
288 set_dabr(0, 0);
289
290 /* Deliver the signal to userspace */
291 info.si_signo = SIGTRAP;
292 info.si_errno = 0;
293 info.si_code = TRAP_HWBKPT;
294 info.si_addr = (void __user *)address;
295 force_sig_info(SIGTRAP, &info, current);
296 }
297 #endif /* CONFIG_PPC_ADV_DEBUG_REGS */
298
299 static DEFINE_PER_CPU(unsigned long, current_dabr);
300
301 #ifdef CONFIG_PPC_ADV_DEBUG_REGS
302 /*
303 * Set the debug registers back to their default "safe" values.
304 */
305 static void set_debug_reg_defaults(struct thread_struct *thread)
306 {
307 thread->iac1 = thread->iac2 = 0;
308 #if CONFIG_PPC_ADV_DEBUG_IACS > 2
309 thread->iac3 = thread->iac4 = 0;
310 #endif
311 thread->dac1 = thread->dac2 = 0;
312 #if CONFIG_PPC_ADV_DEBUG_DVCS > 0
313 thread->dvc1 = thread->dvc2 = 0;
314 #endif
315 thread->dbcr0 = 0;
316 #ifdef CONFIG_BOOKE
317 /*
318 * Force User/Supervisor bits to b11 (user-only MSR[PR]=1)
319 */
320 thread->dbcr1 = DBCR1_IAC1US | DBCR1_IAC2US | \
321 DBCR1_IAC3US | DBCR1_IAC4US;
322 /*
323 * Force Data Address Compare User/Supervisor bits to be User-only
324 * (0b11 MSR[PR]=1) and set all other bits in DBCR2 register to be 0.
325 */
326 thread->dbcr2 = DBCR2_DAC1US | DBCR2_DAC2US;
327 #else
328 thread->dbcr1 = 0;
329 #endif
330 }
331
332 static void prime_debug_regs(struct thread_struct *thread)
333 {
334 mtspr(SPRN_IAC1, thread->iac1);
335 mtspr(SPRN_IAC2, thread->iac2);
336 #if CONFIG_PPC_ADV_DEBUG_IACS > 2
337 mtspr(SPRN_IAC3, thread->iac3);
338 mtspr(SPRN_IAC4, thread->iac4);
339 #endif
340 mtspr(SPRN_DAC1, thread->dac1);
341 mtspr(SPRN_DAC2, thread->dac2);
342 #if CONFIG_PPC_ADV_DEBUG_DVCS > 0
343 mtspr(SPRN_DVC1, thread->dvc1);
344 mtspr(SPRN_DVC2, thread->dvc2);
345 #endif
346 mtspr(SPRN_DBCR0, thread->dbcr0);
347 mtspr(SPRN_DBCR1, thread->dbcr1);
348 #ifdef CONFIG_BOOKE
349 mtspr(SPRN_DBCR2, thread->dbcr2);
350 #endif
351 }
352 /*
353 * Unless neither the old or new thread are making use of the
354 * debug registers, set the debug registers from the values
355 * stored in the new thread.
356 */
357 static void switch_booke_debug_regs(struct thread_struct *new_thread)
358 {
359 if ((current->thread.dbcr0 & DBCR0_IDM)
360 || (new_thread->dbcr0 & DBCR0_IDM))
361 prime_debug_regs(new_thread);
362 }
363 #else /* !CONFIG_PPC_ADV_DEBUG_REGS */
364 #ifndef CONFIG_HAVE_HW_BREAKPOINT
365 static void set_debug_reg_defaults(struct thread_struct *thread)
366 {
367 if (thread->dabr) {
368 thread->dabr = 0;
369 thread->dabrx = 0;
370 set_dabr(0, 0);
371 }
372 }
373 #endif /* !CONFIG_HAVE_HW_BREAKPOINT */
374 #endif /* CONFIG_PPC_ADV_DEBUG_REGS */
375
376 int set_dabr(unsigned long dabr, unsigned long dabrx)
377 {
378 __get_cpu_var(current_dabr) = dabr;
379
380 if (ppc_md.set_dabr)
381 return ppc_md.set_dabr(dabr, dabrx);
382
383 /* XXX should we have a CPU_FTR_HAS_DABR ? */
384 #ifdef CONFIG_PPC_ADV_DEBUG_REGS
385 mtspr(SPRN_DAC1, dabr);
386 #ifdef CONFIG_PPC_47x
387 isync();
388 #endif
389 #elif defined(CONFIG_PPC_BOOK3S)
390 mtspr(SPRN_DABR, dabr);
391 mtspr(SPRN_DABRX, dabrx);
392 #endif
393 return 0;
394 }
395
396 #ifdef CONFIG_PPC64
397 DEFINE_PER_CPU(struct cpu_usage, cpu_usage_array);
398 #endif
399
400 struct task_struct *__switch_to(struct task_struct *prev,
401 struct task_struct *new)
402 {
403 struct thread_struct *new_thread, *old_thread;
404 unsigned long flags;
405 struct task_struct *last;
406 #ifdef CONFIG_PPC_BOOK3S_64
407 struct ppc64_tlb_batch *batch;
408 #endif
409
410 #ifdef CONFIG_SMP
411 /* avoid complexity of lazy save/restore of fpu
412 * by just saving it every time we switch out if
413 * this task used the fpu during the last quantum.
414 *
415 * If it tries to use the fpu again, it'll trap and
416 * reload its fp regs. So we don't have to do a restore
417 * every switch, just a save.
418 * -- Cort
419 */
420 if (prev->thread.regs && (prev->thread.regs->msr & MSR_FP))
421 giveup_fpu(prev);
422 #ifdef CONFIG_ALTIVEC
423 /*
424 * If the previous thread used altivec in the last quantum
425 * (thus changing altivec regs) then save them.
426 * We used to check the VRSAVE register but not all apps
427 * set it, so we don't rely on it now (and in fact we need
428 * to save & restore VSCR even if VRSAVE == 0). -- paulus
429 *
430 * On SMP we always save/restore altivec regs just to avoid the
431 * complexity of changing processors.
432 * -- Cort
433 */
434 if (prev->thread.regs && (prev->thread.regs->msr & MSR_VEC))
435 giveup_altivec(prev);
436 #endif /* CONFIG_ALTIVEC */
437 #ifdef CONFIG_VSX
438 if (prev->thread.regs && (prev->thread.regs->msr & MSR_VSX))
439 /* VMX and FPU registers are already save here */
440 __giveup_vsx(prev);
441 #endif /* CONFIG_VSX */
442 #ifdef CONFIG_SPE
443 /*
444 * If the previous thread used spe in the last quantum
445 * (thus changing spe regs) then save them.
446 *
447 * On SMP we always save/restore spe regs just to avoid the
448 * complexity of changing processors.
449 */
450 if ((prev->thread.regs && (prev->thread.regs->msr & MSR_SPE)))
451 giveup_spe(prev);
452 #endif /* CONFIG_SPE */
453
454 #else /* CONFIG_SMP */
455 #ifdef CONFIG_ALTIVEC
456 /* Avoid the trap. On smp this this never happens since
457 * we don't set last_task_used_altivec -- Cort
458 */
459 if (new->thread.regs && last_task_used_altivec == new)
460 new->thread.regs->msr |= MSR_VEC;
461 #endif /* CONFIG_ALTIVEC */
462 #ifdef CONFIG_VSX
463 if (new->thread.regs && last_task_used_vsx == new)
464 new->thread.regs->msr |= MSR_VSX;
465 #endif /* CONFIG_VSX */
466 #ifdef CONFIG_SPE
467 /* Avoid the trap. On smp this this never happens since
468 * we don't set last_task_used_spe
469 */
470 if (new->thread.regs && last_task_used_spe == new)
471 new->thread.regs->msr |= MSR_SPE;
472 #endif /* CONFIG_SPE */
473
474 #endif /* CONFIG_SMP */
475
476 #ifdef CONFIG_PPC_ADV_DEBUG_REGS
477 switch_booke_debug_regs(&new->thread);
478 #else
479 /*
480 * For PPC_BOOK3S_64, we use the hw-breakpoint interfaces that would
481 * schedule DABR
482 */
483 #ifndef CONFIG_HAVE_HW_BREAKPOINT
484 if (unlikely(__get_cpu_var(current_dabr) != new->thread.dabr))
485 set_dabr(new->thread.dabr, new->thread.dabrx);
486 #endif /* CONFIG_HAVE_HW_BREAKPOINT */
487 #endif
488
489
490 new_thread = &new->thread;
491 old_thread = &current->thread;
492
493 #ifdef CONFIG_PPC64
494 /*
495 * Collect processor utilization data per process
496 */
497 if (firmware_has_feature(FW_FEATURE_SPLPAR)) {
498 struct cpu_usage *cu = &__get_cpu_var(cpu_usage_array);
499 long unsigned start_tb, current_tb;
500 start_tb = old_thread->start_tb;
501 cu->current_tb = current_tb = mfspr(SPRN_PURR);
502 old_thread->accum_tb += (current_tb - start_tb);
503 new_thread->start_tb = current_tb;
504 }
505 #endif /* CONFIG_PPC64 */
506
507 #ifdef CONFIG_PPC_BOOK3S_64
508 batch = &__get_cpu_var(ppc64_tlb_batch);
509 if (batch->active) {
510 current_thread_info()->local_flags |= _TLF_LAZY_MMU;
511 if (batch->index)
512 __flush_tlb_pending(batch);
513 batch->active = 0;
514 }
515 #endif /* CONFIG_PPC_BOOK3S_64 */
516
517 local_irq_save(flags);
518
519 /*
520 * We can't take a PMU exception inside _switch() since there is a
521 * window where the kernel stack SLB and the kernel stack are out
522 * of sync. Hard disable here.
523 */
524 hard_irq_disable();
525 last = _switch(old_thread, new_thread);
526
527 #ifdef CONFIG_PPC_BOOK3S_64
528 if (current_thread_info()->local_flags & _TLF_LAZY_MMU) {
529 current_thread_info()->local_flags &= ~_TLF_LAZY_MMU;
530 batch = &__get_cpu_var(ppc64_tlb_batch);
531 batch->active = 1;
532 }
533 #endif /* CONFIG_PPC_BOOK3S_64 */
534
535 local_irq_restore(flags);
536
537 return last;
538 }
539
540 static int instructions_to_print = 16;
541
542 static void show_instructions(struct pt_regs *regs)
543 {
544 int i;
545 unsigned long pc = regs->nip - (instructions_to_print * 3 / 4 *
546 sizeof(int));
547
548 printk("Instruction dump:");
549
550 for (i = 0; i < instructions_to_print; i++) {
551 int instr;
552
553 if (!(i % 8))
554 printk("\n");
555
556 #if !defined(CONFIG_BOOKE)
557 /* If executing with the IMMU off, adjust pc rather
558 * than print XXXXXXXX.
559 */
560 if (!(regs->msr & MSR_IR))
561 pc = (unsigned long)phys_to_virt(pc);
562 #endif
563
564 /* We use __get_user here *only* to avoid an OOPS on a
565 * bad address because the pc *should* only be a
566 * kernel address.
567 */
568 if (!__kernel_text_address(pc) ||
569 __get_user(instr, (unsigned int __user *)pc)) {
570 printk(KERN_CONT "XXXXXXXX ");
571 } else {
572 if (regs->nip == pc)
573 printk(KERN_CONT "<%08x> ", instr);
574 else
575 printk(KERN_CONT "%08x ", instr);
576 }
577
578 pc += sizeof(int);
579 }
580
581 printk("\n");
582 }
583
584 static struct regbit {
585 unsigned long bit;
586 const char *name;
587 } msr_bits[] = {
588 #if defined(CONFIG_PPC64) && !defined(CONFIG_BOOKE)
589 {MSR_SF, "SF"},
590 {MSR_HV, "HV"},
591 #endif
592 {MSR_VEC, "VEC"},
593 {MSR_VSX, "VSX"},
594 #ifdef CONFIG_BOOKE
595 {MSR_CE, "CE"},
596 #endif
597 {MSR_EE, "EE"},
598 {MSR_PR, "PR"},
599 {MSR_FP, "FP"},
600 {MSR_ME, "ME"},
601 #ifdef CONFIG_BOOKE
602 {MSR_DE, "DE"},
603 #else
604 {MSR_SE, "SE"},
605 {MSR_BE, "BE"},
606 #endif
607 {MSR_IR, "IR"},
608 {MSR_DR, "DR"},
609 {MSR_PMM, "PMM"},
610 #ifndef CONFIG_BOOKE
611 {MSR_RI, "RI"},
612 {MSR_LE, "LE"},
613 #endif
614 {0, NULL}
615 };
616
617 static void printbits(unsigned long val, struct regbit *bits)
618 {
619 const char *sep = "";
620
621 printk("<");
622 for (; bits->bit; ++bits)
623 if (val & bits->bit) {
624 printk("%s%s", sep, bits->name);
625 sep = ",";
626 }
627 printk(">");
628 }
629
630 #ifdef CONFIG_PPC64
631 #define REG "%016lx"
632 #define REGS_PER_LINE 4
633 #define LAST_VOLATILE 13
634 #else
635 #define REG "%08lx"
636 #define REGS_PER_LINE 8
637 #define LAST_VOLATILE 12
638 #endif
639
640 void show_regs(struct pt_regs * regs)
641 {
642 int i, trap;
643
644 printk("NIP: "REG" LR: "REG" CTR: "REG"\n",
645 regs->nip, regs->link, regs->ctr);
646 printk("REGS: %p TRAP: %04lx %s (%s)\n",
647 regs, regs->trap, print_tainted(), init_utsname()->release);
648 printk("MSR: "REG" ", regs->msr);
649 printbits(regs->msr, msr_bits);
650 printk(" CR: %08lx XER: %08lx\n", regs->ccr, regs->xer);
651 #ifdef CONFIG_PPC64
652 printk("SOFTE: %ld\n", regs->softe);
653 #endif
654 trap = TRAP(regs);
655 if ((regs->trap != 0xc00) && cpu_has_feature(CPU_FTR_CFAR))
656 printk("CFAR: "REG"\n", regs->orig_gpr3);
657 if (trap == 0x300 || trap == 0x600)
658 #if defined(CONFIG_4xx) || defined(CONFIG_BOOKE)
659 printk("DEAR: "REG", ESR: "REG"\n", regs->dar, regs->dsisr);
660 #else
661 printk("DAR: "REG", DSISR: %08lx\n", regs->dar, regs->dsisr);
662 #endif
663 printk("TASK = %p[%d] '%s' THREAD: %p",
664 current, task_pid_nr(current), current->comm, task_thread_info(current));
665
666 #ifdef CONFIG_SMP
667 printk(" CPU: %d", raw_smp_processor_id());
668 #endif /* CONFIG_SMP */
669
670 for (i = 0; i < 32; i++) {
671 if ((i % REGS_PER_LINE) == 0)
672 printk("\nGPR%02d: ", i);
673 printk(REG " ", regs->gpr[i]);
674 if (i == LAST_VOLATILE && !FULL_REGS(regs))
675 break;
676 }
677 printk("\n");
678 #ifdef CONFIG_KALLSYMS
679 /*
680 * Lookup NIP late so we have the best change of getting the
681 * above info out without failing
682 */
683 printk("NIP ["REG"] %pS\n", regs->nip, (void *)regs->nip);
684 printk("LR ["REG"] %pS\n", regs->link, (void *)regs->link);
685 #endif
686 show_stack(current, (unsigned long *) regs->gpr[1]);
687 if (!user_mode(regs))
688 show_instructions(regs);
689 }
690
691 void exit_thread(void)
692 {
693 discard_lazy_cpu_state();
694 }
695
696 void flush_thread(void)
697 {
698 discard_lazy_cpu_state();
699
700 #ifdef CONFIG_HAVE_HW_BREAKPOINT
701 flush_ptrace_hw_breakpoint(current);
702 #else /* CONFIG_HAVE_HW_BREAKPOINT */
703 set_debug_reg_defaults(&current->thread);
704 #endif /* CONFIG_HAVE_HW_BREAKPOINT */
705 }
706
707 void
708 release_thread(struct task_struct *t)
709 {
710 }
711
712 /*
713 * this gets called so that we can store coprocessor state into memory and
714 * copy the current task into the new thread.
715 */
716 int arch_dup_task_struct(struct task_struct *dst, struct task_struct *src)
717 {
718 flush_fp_to_thread(src);
719 flush_altivec_to_thread(src);
720 flush_vsx_to_thread(src);
721 flush_spe_to_thread(src);
722 #ifdef CONFIG_HAVE_HW_BREAKPOINT
723 flush_ptrace_hw_breakpoint(src);
724 #endif /* CONFIG_HAVE_HW_BREAKPOINT */
725
726 *dst = *src;
727 return 0;
728 }
729
730 /*
731 * Copy a thread..
732 */
733 extern unsigned long dscr_default; /* defined in arch/powerpc/kernel/sysfs.c */
734
735 int copy_thread(unsigned long clone_flags, unsigned long usp,
736 unsigned long arg, struct task_struct *p,
737 struct pt_regs *regs)
738 {
739 struct pt_regs *childregs, *kregs;
740 extern void ret_from_fork(void);
741 extern void ret_from_kernel_thread(void);
742 void (*f)(void);
743 unsigned long sp = (unsigned long)task_stack_page(p) + THREAD_SIZE;
744
745 /* Copy registers */
746 sp -= sizeof(struct pt_regs);
747 childregs = (struct pt_regs *) sp;
748 if (!regs) {
749 struct thread_info *ti = (void *)task_stack_page(p);
750 memset(childregs, 0, sizeof(struct pt_regs));
751 childregs->gpr[1] = sp + sizeof(struct pt_regs);
752 childregs->gpr[14] = usp; /* function */
753 #ifdef CONFIG_PPC64
754 clear_tsk_thread_flag(p, TIF_32BIT);
755 childregs->softe = 1;
756 #endif
757 childregs->gpr[15] = arg;
758 p->thread.regs = NULL; /* no user register state */
759 ti->flags |= _TIF_RESTOREALL;
760 f = ret_from_kernel_thread;
761 } else {
762 CHECK_FULL_REGS(regs);
763 *childregs = *regs;
764 childregs->gpr[1] = usp;
765 p->thread.regs = childregs;
766 childregs->gpr[3] = 0; /* Result from fork() */
767 if (clone_flags & CLONE_SETTLS) {
768 #ifdef CONFIG_PPC64
769 if (!is_32bit_task())
770 childregs->gpr[13] = childregs->gpr[6];
771 else
772 #endif
773 childregs->gpr[2] = childregs->gpr[6];
774 }
775
776 f = ret_from_fork;
777 }
778 sp -= STACK_FRAME_OVERHEAD;
779
780 /*
781 * The way this works is that at some point in the future
782 * some task will call _switch to switch to the new task.
783 * That will pop off the stack frame created below and start
784 * the new task running at ret_from_fork. The new task will
785 * do some house keeping and then return from the fork or clone
786 * system call, using the stack frame created above.
787 */
788 sp -= sizeof(struct pt_regs);
789 kregs = (struct pt_regs *) sp;
790 sp -= STACK_FRAME_OVERHEAD;
791 p->thread.ksp = sp;
792 p->thread.ksp_limit = (unsigned long)task_stack_page(p) +
793 _ALIGN_UP(sizeof(struct thread_info), 16);
794
795 #ifdef CONFIG_PPC_STD_MMU_64
796 if (mmu_has_feature(MMU_FTR_SLB)) {
797 unsigned long sp_vsid;
798 unsigned long llp = mmu_psize_defs[mmu_linear_psize].sllp;
799
800 if (mmu_has_feature(MMU_FTR_1T_SEGMENT))
801 sp_vsid = get_kernel_vsid(sp, MMU_SEGSIZE_1T)
802 << SLB_VSID_SHIFT_1T;
803 else
804 sp_vsid = get_kernel_vsid(sp, MMU_SEGSIZE_256M)
805 << SLB_VSID_SHIFT;
806 sp_vsid |= SLB_VSID_KERNEL | llp;
807 p->thread.ksp_vsid = sp_vsid;
808 }
809 #endif /* CONFIG_PPC_STD_MMU_64 */
810 #ifdef CONFIG_PPC64
811 if (cpu_has_feature(CPU_FTR_DSCR)) {
812 p->thread.dscr_inherit = current->thread.dscr_inherit;
813 p->thread.dscr = current->thread.dscr;
814 }
815 #endif
816 /*
817 * The PPC64 ABI makes use of a TOC to contain function
818 * pointers. The function (ret_from_except) is actually a pointer
819 * to the TOC entry. The first entry is a pointer to the actual
820 * function.
821 */
822 #ifdef CONFIG_PPC64
823 kregs->nip = *((unsigned long *)f);
824 #else
825 kregs->nip = (unsigned long)f;
826 #endif
827 return 0;
828 }
829
830 /*
831 * Set up a thread for executing a new program
832 */
833 void start_thread(struct pt_regs *regs, unsigned long start, unsigned long sp)
834 {
835 #ifdef CONFIG_PPC64
836 unsigned long load_addr = regs->gpr[2]; /* saved by ELF_PLAT_INIT */
837 #endif
838
839 /*
840 * If we exec out of a kernel thread then thread.regs will not be
841 * set. Do it now.
842 */
843 if (!current->thread.regs) {
844 struct pt_regs *regs = task_stack_page(current) + THREAD_SIZE;
845 current->thread.regs = regs - 1;
846 }
847
848 memset(regs->gpr, 0, sizeof(regs->gpr));
849 regs->ctr = 0;
850 regs->link = 0;
851 regs->xer = 0;
852 regs->ccr = 0;
853 regs->gpr[1] = sp;
854
855 /*
856 * We have just cleared all the nonvolatile GPRs, so make
857 * FULL_REGS(regs) return true. This is necessary to allow
858 * ptrace to examine the thread immediately after exec.
859 */
860 regs->trap &= ~1UL;
861
862 #ifdef CONFIG_PPC32
863 regs->mq = 0;
864 regs->nip = start;
865 regs->msr = MSR_USER;
866 #else
867 if (!is_32bit_task()) {
868 unsigned long entry, toc;
869
870 /* start is a relocated pointer to the function descriptor for
871 * the elf _start routine. The first entry in the function
872 * descriptor is the entry address of _start and the second
873 * entry is the TOC value we need to use.
874 */
875 __get_user(entry, (unsigned long __user *)start);
876 __get_user(toc, (unsigned long __user *)start+1);
877
878 /* Check whether the e_entry function descriptor entries
879 * need to be relocated before we can use them.
880 */
881 if (load_addr != 0) {
882 entry += load_addr;
883 toc += load_addr;
884 }
885 regs->nip = entry;
886 regs->gpr[2] = toc;
887 regs->msr = MSR_USER64;
888 } else {
889 regs->nip = start;
890 regs->gpr[2] = 0;
891 regs->msr = MSR_USER32;
892 }
893 #endif
894
895 discard_lazy_cpu_state();
896 #ifdef CONFIG_VSX
897 current->thread.used_vsr = 0;
898 #endif
899 memset(current->thread.fpr, 0, sizeof(current->thread.fpr));
900 current->thread.fpscr.val = 0;
901 #ifdef CONFIG_ALTIVEC
902 memset(current->thread.vr, 0, sizeof(current->thread.vr));
903 memset(&current->thread.vscr, 0, sizeof(current->thread.vscr));
904 current->thread.vscr.u[3] = 0x00010000; /* Java mode disabled */
905 current->thread.vrsave = 0;
906 current->thread.used_vr = 0;
907 #endif /* CONFIG_ALTIVEC */
908 #ifdef CONFIG_SPE
909 memset(current->thread.evr, 0, sizeof(current->thread.evr));
910 current->thread.acc = 0;
911 current->thread.spefscr = 0;
912 current->thread.used_spe = 0;
913 #endif /* CONFIG_SPE */
914 }
915
916 #define PR_FP_ALL_EXCEPT (PR_FP_EXC_DIV | PR_FP_EXC_OVF | PR_FP_EXC_UND \
917 | PR_FP_EXC_RES | PR_FP_EXC_INV)
918
919 int set_fpexc_mode(struct task_struct *tsk, unsigned int val)
920 {
921 struct pt_regs *regs = tsk->thread.regs;
922
923 /* This is a bit hairy. If we are an SPE enabled processor
924 * (have embedded fp) we store the IEEE exception enable flags in
925 * fpexc_mode. fpexc_mode is also used for setting FP exception
926 * mode (asyn, precise, disabled) for 'Classic' FP. */
927 if (val & PR_FP_EXC_SW_ENABLE) {
928 #ifdef CONFIG_SPE
929 if (cpu_has_feature(CPU_FTR_SPE)) {
930 tsk->thread.fpexc_mode = val &
931 (PR_FP_EXC_SW_ENABLE | PR_FP_ALL_EXCEPT);
932 return 0;
933 } else {
934 return -EINVAL;
935 }
936 #else
937 return -EINVAL;
938 #endif
939 }
940
941 /* on a CONFIG_SPE this does not hurt us. The bits that
942 * __pack_fe01 use do not overlap with bits used for
943 * PR_FP_EXC_SW_ENABLE. Additionally, the MSR[FE0,FE1] bits
944 * on CONFIG_SPE implementations are reserved so writing to
945 * them does not change anything */
946 if (val > PR_FP_EXC_PRECISE)
947 return -EINVAL;
948 tsk->thread.fpexc_mode = __pack_fe01(val);
949 if (regs != NULL && (regs->msr & MSR_FP) != 0)
950 regs->msr = (regs->msr & ~(MSR_FE0|MSR_FE1))
951 | tsk->thread.fpexc_mode;
952 return 0;
953 }
954
955 int get_fpexc_mode(struct task_struct *tsk, unsigned long adr)
956 {
957 unsigned int val;
958
959 if (tsk->thread.fpexc_mode & PR_FP_EXC_SW_ENABLE)
960 #ifdef CONFIG_SPE
961 if (cpu_has_feature(CPU_FTR_SPE))
962 val = tsk->thread.fpexc_mode;
963 else
964 return -EINVAL;
965 #else
966 return -EINVAL;
967 #endif
968 else
969 val = __unpack_fe01(tsk->thread.fpexc_mode);
970 return put_user(val, (unsigned int __user *) adr);
971 }
972
973 int set_endian(struct task_struct *tsk, unsigned int val)
974 {
975 struct pt_regs *regs = tsk->thread.regs;
976
977 if ((val == PR_ENDIAN_LITTLE && !cpu_has_feature(CPU_FTR_REAL_LE)) ||
978 (val == PR_ENDIAN_PPC_LITTLE && !cpu_has_feature(CPU_FTR_PPC_LE)))
979 return -EINVAL;
980
981 if (regs == NULL)
982 return -EINVAL;
983
984 if (val == PR_ENDIAN_BIG)
985 regs->msr &= ~MSR_LE;
986 else if (val == PR_ENDIAN_LITTLE || val == PR_ENDIAN_PPC_LITTLE)
987 regs->msr |= MSR_LE;
988 else
989 return -EINVAL;
990
991 return 0;
992 }
993
994 int get_endian(struct task_struct *tsk, unsigned long adr)
995 {
996 struct pt_regs *regs = tsk->thread.regs;
997 unsigned int val;
998
999 if (!cpu_has_feature(CPU_FTR_PPC_LE) &&
1000 !cpu_has_feature(CPU_FTR_REAL_LE))
1001 return -EINVAL;
1002
1003 if (regs == NULL)
1004 return -EINVAL;
1005
1006 if (regs->msr & MSR_LE) {
1007 if (cpu_has_feature(CPU_FTR_REAL_LE))
1008 val = PR_ENDIAN_LITTLE;
1009 else
1010 val = PR_ENDIAN_PPC_LITTLE;
1011 } else
1012 val = PR_ENDIAN_BIG;
1013
1014 return put_user(val, (unsigned int __user *)adr);
1015 }
1016
1017 int set_unalign_ctl(struct task_struct *tsk, unsigned int val)
1018 {
1019 tsk->thread.align_ctl = val;
1020 return 0;
1021 }
1022
1023 int get_unalign_ctl(struct task_struct *tsk, unsigned long adr)
1024 {
1025 return put_user(tsk->thread.align_ctl, (unsigned int __user *)adr);
1026 }
1027
1028 int sys_clone(unsigned long clone_flags, unsigned long usp,
1029 int __user *parent_tidp, void __user *child_threadptr,
1030 int __user *child_tidp, int p6,
1031 struct pt_regs *regs)
1032 {
1033 if (usp == 0)
1034 usp = regs->gpr[1]; /* stack pointer for child */
1035 return do_fork(clone_flags, usp, regs, 0, parent_tidp, child_tidp);
1036 }
1037
1038 int sys_fork(unsigned long p1, unsigned long p2, unsigned long p3,
1039 unsigned long p4, unsigned long p5, unsigned long p6,
1040 struct pt_regs *regs)
1041 {
1042 return do_fork(SIGCHLD, regs->gpr[1], regs, 0, NULL, NULL);
1043 }
1044
1045 int sys_vfork(unsigned long p1, unsigned long p2, unsigned long p3,
1046 unsigned long p4, unsigned long p5, unsigned long p6,
1047 struct pt_regs *regs)
1048 {
1049 return do_fork(CLONE_VFORK | CLONE_VM | SIGCHLD, regs->gpr[1],
1050 regs, 0, NULL, NULL);
1051 }
1052
1053 static inline int valid_irq_stack(unsigned long sp, struct task_struct *p,
1054 unsigned long nbytes)
1055 {
1056 unsigned long stack_page;
1057 unsigned long cpu = task_cpu(p);
1058
1059 /*
1060 * Avoid crashing if the stack has overflowed and corrupted
1061 * task_cpu(p), which is in the thread_info struct.
1062 */
1063 if (cpu < NR_CPUS && cpu_possible(cpu)) {
1064 stack_page = (unsigned long) hardirq_ctx[cpu];
1065 if (sp >= stack_page + sizeof(struct thread_struct)
1066 && sp <= stack_page + THREAD_SIZE - nbytes)
1067 return 1;
1068
1069 stack_page = (unsigned long) softirq_ctx[cpu];
1070 if (sp >= stack_page + sizeof(struct thread_struct)
1071 && sp <= stack_page + THREAD_SIZE - nbytes)
1072 return 1;
1073 }
1074 return 0;
1075 }
1076
1077 int validate_sp(unsigned long sp, struct task_struct *p,
1078 unsigned long nbytes)
1079 {
1080 unsigned long stack_page = (unsigned long)task_stack_page(p);
1081
1082 if (sp >= stack_page + sizeof(struct thread_struct)
1083 && sp <= stack_page + THREAD_SIZE - nbytes)
1084 return 1;
1085
1086 return valid_irq_stack(sp, p, nbytes);
1087 }
1088
1089 EXPORT_SYMBOL(validate_sp);
1090
1091 unsigned long get_wchan(struct task_struct *p)
1092 {
1093 unsigned long ip, sp;
1094 int count = 0;
1095
1096 if (!p || p == current || p->state == TASK_RUNNING)
1097 return 0;
1098
1099 sp = p->thread.ksp;
1100 if (!validate_sp(sp, p, STACK_FRAME_OVERHEAD))
1101 return 0;
1102
1103 do {
1104 sp = *(unsigned long *)sp;
1105 if (!validate_sp(sp, p, STACK_FRAME_OVERHEAD))
1106 return 0;
1107 if (count > 0) {
1108 ip = ((unsigned long *)sp)[STACK_FRAME_LR_SAVE];
1109 if (!in_sched_functions(ip))
1110 return ip;
1111 }
1112 } while (count++ < 16);
1113 return 0;
1114 }
1115
1116 static int kstack_depth_to_print = CONFIG_PRINT_STACK_DEPTH;
1117
1118 void show_stack(struct task_struct *tsk, unsigned long *stack)
1119 {
1120 unsigned long sp, ip, lr, newsp;
1121 int count = 0;
1122 int firstframe = 1;
1123 #ifdef CONFIG_FUNCTION_GRAPH_TRACER
1124 int curr_frame = current->curr_ret_stack;
1125 extern void return_to_handler(void);
1126 unsigned long rth = (unsigned long)return_to_handler;
1127 unsigned long mrth = -1;
1128 #ifdef CONFIG_PPC64
1129 extern void mod_return_to_handler(void);
1130 rth = *(unsigned long *)rth;
1131 mrth = (unsigned long)mod_return_to_handler;
1132 mrth = *(unsigned long *)mrth;
1133 #endif
1134 #endif
1135
1136 sp = (unsigned long) stack;
1137 if (tsk == NULL)
1138 tsk = current;
1139 if (sp == 0) {
1140 if (tsk == current)
1141 asm("mr %0,1" : "=r" (sp));
1142 else
1143 sp = tsk->thread.ksp;
1144 }
1145
1146 lr = 0;
1147 printk("Call Trace:\n");
1148 do {
1149 if (!validate_sp(sp, tsk, STACK_FRAME_OVERHEAD))
1150 return;
1151
1152 stack = (unsigned long *) sp;
1153 newsp = stack[0];
1154 ip = stack[STACK_FRAME_LR_SAVE];
1155 if (!firstframe || ip != lr) {
1156 printk("["REG"] ["REG"] %pS", sp, ip, (void *)ip);
1157 #ifdef CONFIG_FUNCTION_GRAPH_TRACER
1158 if ((ip == rth || ip == mrth) && curr_frame >= 0) {
1159 printk(" (%pS)",
1160 (void *)current->ret_stack[curr_frame].ret);
1161 curr_frame--;
1162 }
1163 #endif
1164 if (firstframe)
1165 printk(" (unreliable)");
1166 printk("\n");
1167 }
1168 firstframe = 0;
1169
1170 /*
1171 * See if this is an exception frame.
1172 * We look for the "regshere" marker in the current frame.
1173 */
1174 if (validate_sp(sp, tsk, STACK_INT_FRAME_SIZE)
1175 && stack[STACK_FRAME_MARKER] == STACK_FRAME_REGS_MARKER) {
1176 struct pt_regs *regs = (struct pt_regs *)
1177 (sp + STACK_FRAME_OVERHEAD);
1178 lr = regs->link;
1179 printk("--- Exception: %lx at %pS\n LR = %pS\n",
1180 regs->trap, (void *)regs->nip, (void *)lr);
1181 firstframe = 1;
1182 }
1183
1184 sp = newsp;
1185 } while (count++ < kstack_depth_to_print);
1186 }
1187
1188 void dump_stack(void)
1189 {
1190 show_stack(current, NULL);
1191 }
1192 EXPORT_SYMBOL(dump_stack);
1193
1194 #ifdef CONFIG_PPC64
1195 /* Called with hard IRQs off */
1196 void __ppc64_runlatch_on(void)
1197 {
1198 struct thread_info *ti = current_thread_info();
1199 unsigned long ctrl;
1200
1201 ctrl = mfspr(SPRN_CTRLF);
1202 ctrl |= CTRL_RUNLATCH;
1203 mtspr(SPRN_CTRLT, ctrl);
1204
1205 ti->local_flags |= _TLF_RUNLATCH;
1206 }
1207
1208 /* Called with hard IRQs off */
1209 void __ppc64_runlatch_off(void)
1210 {
1211 struct thread_info *ti = current_thread_info();
1212 unsigned long ctrl;
1213
1214 ti->local_flags &= ~_TLF_RUNLATCH;
1215
1216 ctrl = mfspr(SPRN_CTRLF);
1217 ctrl &= ~CTRL_RUNLATCH;
1218 mtspr(SPRN_CTRLT, ctrl);
1219 }
1220 #endif /* CONFIG_PPC64 */
1221
1222 unsigned long arch_align_stack(unsigned long sp)
1223 {
1224 if (!(current->personality & ADDR_NO_RANDOMIZE) && randomize_va_space)
1225 sp -= get_random_int() & ~PAGE_MASK;
1226 return sp & ~0xf;
1227 }
1228
1229 static inline unsigned long brk_rnd(void)
1230 {
1231 unsigned long rnd = 0;
1232
1233 /* 8MB for 32bit, 1GB for 64bit */
1234 if (is_32bit_task())
1235 rnd = (long)(get_random_int() % (1<<(23-PAGE_SHIFT)));
1236 else
1237 rnd = (long)(get_random_int() % (1<<(30-PAGE_SHIFT)));
1238
1239 return rnd << PAGE_SHIFT;
1240 }
1241
1242 unsigned long arch_randomize_brk(struct mm_struct *mm)
1243 {
1244 unsigned long base = mm->brk;
1245 unsigned long ret;
1246
1247 #ifdef CONFIG_PPC_STD_MMU_64
1248 /*
1249 * If we are using 1TB segments and we are allowed to randomise
1250 * the heap, we can put it above 1TB so it is backed by a 1TB
1251 * segment. Otherwise the heap will be in the bottom 1TB
1252 * which always uses 256MB segments and this may result in a
1253 * performance penalty.
1254 */
1255 if (!is_32bit_task() && (mmu_highuser_ssize == MMU_SEGSIZE_1T))
1256 base = max_t(unsigned long, mm->brk, 1UL << SID_SHIFT_1T);
1257 #endif
1258
1259 ret = PAGE_ALIGN(base + brk_rnd());
1260
1261 if (ret < mm->brk)
1262 return mm->brk;
1263
1264 return ret;
1265 }
1266
1267 unsigned long randomize_et_dyn(unsigned long base)
1268 {
1269 unsigned long ret = PAGE_ALIGN(base + brk_rnd());
1270
1271 if (ret < base)
1272 return base;
1273
1274 return ret;
1275 }
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