process.c 22 KB

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  1. /*
  2. * Architecture-specific setup.
  3. *
  4. * Copyright (C) 1998-2003 Hewlett-Packard Co
  5. * David Mosberger-Tang <davidm@hpl.hp.com>
  6. * 04/11/17 Ashok Raj <ashok.raj@intel.com> Added CPU Hotplug Support
  7. */
  8. #define __KERNEL_SYSCALLS__ /* see <asm/unistd.h> */
  9. #include <linux/config.h>
  10. #include <linux/cpu.h>
  11. #include <linux/pm.h>
  12. #include <linux/elf.h>
  13. #include <linux/errno.h>
  14. #include <linux/kallsyms.h>
  15. #include <linux/kernel.h>
  16. #include <linux/mm.h>
  17. #include <linux/module.h>
  18. #include <linux/notifier.h>
  19. #include <linux/personality.h>
  20. #include <linux/sched.h>
  21. #include <linux/slab.h>
  22. #include <linux/smp_lock.h>
  23. #include <linux/stddef.h>
  24. #include <linux/thread_info.h>
  25. #include <linux/unistd.h>
  26. #include <linux/efi.h>
  27. #include <linux/interrupt.h>
  28. #include <linux/delay.h>
  29. #include <linux/kprobes.h>
  30. #include <asm/cpu.h>
  31. #include <asm/delay.h>
  32. #include <asm/elf.h>
  33. #include <asm/ia32.h>
  34. #include <asm/irq.h>
  35. #include <asm/pgalloc.h>
  36. #include <asm/processor.h>
  37. #include <asm/sal.h>
  38. #include <asm/tlbflush.h>
  39. #include <asm/uaccess.h>
  40. #include <asm/unwind.h>
  41. #include <asm/user.h>
  42. #include "entry.h"
  43. #ifdef CONFIG_PERFMON
  44. # include <asm/perfmon.h>
  45. #endif
  46. #include "sigframe.h"
  47. void (*ia64_mark_idle)(int);
  48. static DEFINE_PER_CPU(unsigned int, cpu_idle_state);
  49. unsigned long boot_option_idle_override = 0;
  50. EXPORT_SYMBOL(boot_option_idle_override);
  51. void
  52. ia64_do_show_stack (struct unw_frame_info *info, void *arg)
  53. {
  54. unsigned long ip, sp, bsp;
  55. char buf[128]; /* don't make it so big that it overflows the stack! */
  56. printk("\nCall Trace:\n");
  57. do {
  58. unw_get_ip(info, &ip);
  59. if (ip == 0)
  60. break;
  61. unw_get_sp(info, &sp);
  62. unw_get_bsp(info, &bsp);
  63. snprintf(buf, sizeof(buf),
  64. " [<%016lx>] %%s\n"
  65. " sp=%016lx bsp=%016lx\n",
  66. ip, sp, bsp);
  67. print_symbol(buf, ip);
  68. } while (unw_unwind(info) >= 0);
  69. }
  70. void
  71. show_stack (struct task_struct *task, unsigned long *sp)
  72. {
  73. if (!task)
  74. unw_init_running(ia64_do_show_stack, NULL);
  75. else {
  76. struct unw_frame_info info;
  77. unw_init_from_blocked_task(&info, task);
  78. ia64_do_show_stack(&info, NULL);
  79. }
  80. }
  81. void
  82. dump_stack (void)
  83. {
  84. show_stack(NULL, NULL);
  85. }
  86. EXPORT_SYMBOL(dump_stack);
  87. void
  88. show_regs (struct pt_regs *regs)
  89. {
  90. unsigned long ip = regs->cr_iip + ia64_psr(regs)->ri;
  91. print_modules();
  92. printk("\nPid: %d, CPU %d, comm: %20s\n", current->pid, smp_processor_id(), current->comm);
  93. printk("psr : %016lx ifs : %016lx ip : [<%016lx>] %s\n",
  94. regs->cr_ipsr, regs->cr_ifs, ip, print_tainted());
  95. print_symbol("ip is at %s\n", ip);
  96. printk("unat: %016lx pfs : %016lx rsc : %016lx\n",
  97. regs->ar_unat, regs->ar_pfs, regs->ar_rsc);
  98. printk("rnat: %016lx bsps: %016lx pr : %016lx\n",
  99. regs->ar_rnat, regs->ar_bspstore, regs->pr);
  100. printk("ldrs: %016lx ccv : %016lx fpsr: %016lx\n",
  101. regs->loadrs, regs->ar_ccv, regs->ar_fpsr);
  102. printk("csd : %016lx ssd : %016lx\n", regs->ar_csd, regs->ar_ssd);
  103. printk("b0 : %016lx b6 : %016lx b7 : %016lx\n", regs->b0, regs->b6, regs->b7);
  104. printk("f6 : %05lx%016lx f7 : %05lx%016lx\n",
  105. regs->f6.u.bits[1], regs->f6.u.bits[0],
  106. regs->f7.u.bits[1], regs->f7.u.bits[0]);
  107. printk("f8 : %05lx%016lx f9 : %05lx%016lx\n",
  108. regs->f8.u.bits[1], regs->f8.u.bits[0],
  109. regs->f9.u.bits[1], regs->f9.u.bits[0]);
  110. printk("f10 : %05lx%016lx f11 : %05lx%016lx\n",
  111. regs->f10.u.bits[1], regs->f10.u.bits[0],
  112. regs->f11.u.bits[1], regs->f11.u.bits[0]);
  113. printk("r1 : %016lx r2 : %016lx r3 : %016lx\n", regs->r1, regs->r2, regs->r3);
  114. printk("r8 : %016lx r9 : %016lx r10 : %016lx\n", regs->r8, regs->r9, regs->r10);
  115. printk("r11 : %016lx r12 : %016lx r13 : %016lx\n", regs->r11, regs->r12, regs->r13);
  116. printk("r14 : %016lx r15 : %016lx r16 : %016lx\n", regs->r14, regs->r15, regs->r16);
  117. printk("r17 : %016lx r18 : %016lx r19 : %016lx\n", regs->r17, regs->r18, regs->r19);
  118. printk("r20 : %016lx r21 : %016lx r22 : %016lx\n", regs->r20, regs->r21, regs->r22);
  119. printk("r23 : %016lx r24 : %016lx r25 : %016lx\n", regs->r23, regs->r24, regs->r25);
  120. printk("r26 : %016lx r27 : %016lx r28 : %016lx\n", regs->r26, regs->r27, regs->r28);
  121. printk("r29 : %016lx r30 : %016lx r31 : %016lx\n", regs->r29, regs->r30, regs->r31);
  122. if (user_mode(regs)) {
  123. /* print the stacked registers */
  124. unsigned long val, *bsp, ndirty;
  125. int i, sof, is_nat = 0;
  126. sof = regs->cr_ifs & 0x7f; /* size of frame */
  127. ndirty = (regs->loadrs >> 19);
  128. bsp = ia64_rse_skip_regs((unsigned long *) regs->ar_bspstore, ndirty);
  129. for (i = 0; i < sof; ++i) {
  130. get_user(val, (unsigned long __user *) ia64_rse_skip_regs(bsp, i));
  131. printk("r%-3u:%c%016lx%s", 32 + i, is_nat ? '*' : ' ', val,
  132. ((i == sof - 1) || (i % 3) == 2) ? "\n" : " ");
  133. }
  134. } else
  135. show_stack(NULL, NULL);
  136. }
  137. void
  138. do_notify_resume_user (sigset_t *oldset, struct sigscratch *scr, long in_syscall)
  139. {
  140. if (fsys_mode(current, &scr->pt)) {
  141. /* defer signal-handling etc. until we return to privilege-level 0. */
  142. if (!ia64_psr(&scr->pt)->lp)
  143. ia64_psr(&scr->pt)->lp = 1;
  144. return;
  145. }
  146. #ifdef CONFIG_PERFMON
  147. if (current->thread.pfm_needs_checking)
  148. pfm_handle_work();
  149. #endif
  150. /* deal with pending signal delivery */
  151. if (test_thread_flag(TIF_SIGPENDING))
  152. ia64_do_signal(oldset, scr, in_syscall);
  153. }
  154. static int pal_halt = 1;
  155. static int can_do_pal_halt = 1;
  156. static int __init nohalt_setup(char * str)
  157. {
  158. pal_halt = can_do_pal_halt = 0;
  159. return 1;
  160. }
  161. __setup("nohalt", nohalt_setup);
  162. void
  163. update_pal_halt_status(int status)
  164. {
  165. can_do_pal_halt = pal_halt && status;
  166. }
  167. /*
  168. * We use this if we don't have any better idle routine..
  169. */
  170. void
  171. default_idle (void)
  172. {
  173. local_irq_enable();
  174. while (!need_resched()) {
  175. if (can_do_pal_halt) {
  176. local_irq_disable();
  177. if (!need_resched())
  178. safe_halt();
  179. local_irq_enable();
  180. } else
  181. cpu_relax();
  182. }
  183. }
  184. #ifdef CONFIG_HOTPLUG_CPU
  185. /* We don't actually take CPU down, just spin without interrupts. */
  186. static inline void play_dead(void)
  187. {
  188. extern void ia64_cpu_local_tick (void);
  189. unsigned int this_cpu = smp_processor_id();
  190. /* Ack it */
  191. __get_cpu_var(cpu_state) = CPU_DEAD;
  192. max_xtp();
  193. local_irq_disable();
  194. idle_task_exit();
  195. ia64_jump_to_sal(&sal_boot_rendez_state[this_cpu]);
  196. /*
  197. * The above is a point of no-return, the processor is
  198. * expected to be in SAL loop now.
  199. */
  200. BUG();
  201. }
  202. #else
  203. static inline void play_dead(void)
  204. {
  205. BUG();
  206. }
  207. #endif /* CONFIG_HOTPLUG_CPU */
  208. void cpu_idle_wait(void)
  209. {
  210. unsigned int cpu, this_cpu = get_cpu();
  211. cpumask_t map;
  212. set_cpus_allowed(current, cpumask_of_cpu(this_cpu));
  213. put_cpu();
  214. cpus_clear(map);
  215. for_each_online_cpu(cpu) {
  216. per_cpu(cpu_idle_state, cpu) = 1;
  217. cpu_set(cpu, map);
  218. }
  219. __get_cpu_var(cpu_idle_state) = 0;
  220. wmb();
  221. do {
  222. ssleep(1);
  223. for_each_online_cpu(cpu) {
  224. if (cpu_isset(cpu, map) && !per_cpu(cpu_idle_state, cpu))
  225. cpu_clear(cpu, map);
  226. }
  227. cpus_and(map, map, cpu_online_map);
  228. } while (!cpus_empty(map));
  229. }
  230. EXPORT_SYMBOL_GPL(cpu_idle_wait);
  231. void __attribute__((noreturn))
  232. cpu_idle (void)
  233. {
  234. void (*mark_idle)(int) = ia64_mark_idle;
  235. int cpu = smp_processor_id();
  236. set_thread_flag(TIF_POLLING_NRFLAG);
  237. /* endless idle loop with no priority at all */
  238. while (1) {
  239. if (!need_resched()) {
  240. void (*idle)(void);
  241. #ifdef CONFIG_SMP
  242. min_xtp();
  243. #endif
  244. if (__get_cpu_var(cpu_idle_state))
  245. __get_cpu_var(cpu_idle_state) = 0;
  246. rmb();
  247. if (mark_idle)
  248. (*mark_idle)(1);
  249. idle = pm_idle;
  250. if (!idle)
  251. idle = default_idle;
  252. (*idle)();
  253. if (mark_idle)
  254. (*mark_idle)(0);
  255. #ifdef CONFIG_SMP
  256. normal_xtp();
  257. #endif
  258. }
  259. preempt_enable_no_resched();
  260. schedule();
  261. preempt_disable();
  262. check_pgt_cache();
  263. if (cpu_is_offline(cpu))
  264. play_dead();
  265. }
  266. }
  267. void
  268. ia64_save_extra (struct task_struct *task)
  269. {
  270. #ifdef CONFIG_PERFMON
  271. unsigned long info;
  272. #endif
  273. if ((task->thread.flags & IA64_THREAD_DBG_VALID) != 0)
  274. ia64_save_debug_regs(&task->thread.dbr[0]);
  275. #ifdef CONFIG_PERFMON
  276. if ((task->thread.flags & IA64_THREAD_PM_VALID) != 0)
  277. pfm_save_regs(task);
  278. info = __get_cpu_var(pfm_syst_info);
  279. if (info & PFM_CPUINFO_SYST_WIDE)
  280. pfm_syst_wide_update_task(task, info, 0);
  281. #endif
  282. #ifdef CONFIG_IA32_SUPPORT
  283. if (IS_IA32_PROCESS(ia64_task_regs(task)))
  284. ia32_save_state(task);
  285. #endif
  286. }
  287. void
  288. ia64_load_extra (struct task_struct *task)
  289. {
  290. #ifdef CONFIG_PERFMON
  291. unsigned long info;
  292. #endif
  293. if ((task->thread.flags & IA64_THREAD_DBG_VALID) != 0)
  294. ia64_load_debug_regs(&task->thread.dbr[0]);
  295. #ifdef CONFIG_PERFMON
  296. if ((task->thread.flags & IA64_THREAD_PM_VALID) != 0)
  297. pfm_load_regs(task);
  298. info = __get_cpu_var(pfm_syst_info);
  299. if (info & PFM_CPUINFO_SYST_WIDE)
  300. pfm_syst_wide_update_task(task, info, 1);
  301. #endif
  302. #ifdef CONFIG_IA32_SUPPORT
  303. if (IS_IA32_PROCESS(ia64_task_regs(task)))
  304. ia32_load_state(task);
  305. #endif
  306. }
  307. /*
  308. * Copy the state of an ia-64 thread.
  309. *
  310. * We get here through the following call chain:
  311. *
  312. * from user-level: from kernel:
  313. *
  314. * <clone syscall> <some kernel call frames>
  315. * sys_clone :
  316. * do_fork do_fork
  317. * copy_thread copy_thread
  318. *
  319. * This means that the stack layout is as follows:
  320. *
  321. * +---------------------+ (highest addr)
  322. * | struct pt_regs |
  323. * +---------------------+
  324. * | struct switch_stack |
  325. * +---------------------+
  326. * | |
  327. * | memory stack |
  328. * | | <-- sp (lowest addr)
  329. * +---------------------+
  330. *
  331. * Observe that we copy the unat values that are in pt_regs and switch_stack. Spilling an
  332. * integer to address X causes bit N in ar.unat to be set to the NaT bit of the register,
  333. * with N=(X & 0x1ff)/8. Thus, copying the unat value preserves the NaT bits ONLY if the
  334. * pt_regs structure in the parent is congruent to that of the child, modulo 512. Since
  335. * the stack is page aligned and the page size is at least 4KB, this is always the case,
  336. * so there is nothing to worry about.
  337. */
  338. int
  339. copy_thread (int nr, unsigned long clone_flags,
  340. unsigned long user_stack_base, unsigned long user_stack_size,
  341. struct task_struct *p, struct pt_regs *regs)
  342. {
  343. extern char ia64_ret_from_clone, ia32_ret_from_clone;
  344. struct switch_stack *child_stack, *stack;
  345. unsigned long rbs, child_rbs, rbs_size;
  346. struct pt_regs *child_ptregs;
  347. int retval = 0;
  348. #ifdef CONFIG_SMP
  349. /*
  350. * For SMP idle threads, fork_by_hand() calls do_fork with
  351. * NULL regs.
  352. */
  353. if (!regs)
  354. return 0;
  355. #endif
  356. stack = ((struct switch_stack *) regs) - 1;
  357. child_ptregs = (struct pt_regs *) ((unsigned long) p + IA64_STK_OFFSET) - 1;
  358. child_stack = (struct switch_stack *) child_ptregs - 1;
  359. /* copy parent's switch_stack & pt_regs to child: */
  360. memcpy(child_stack, stack, sizeof(*child_ptregs) + sizeof(*child_stack));
  361. rbs = (unsigned long) current + IA64_RBS_OFFSET;
  362. child_rbs = (unsigned long) p + IA64_RBS_OFFSET;
  363. rbs_size = stack->ar_bspstore - rbs;
  364. /* copy the parent's register backing store to the child: */
  365. memcpy((void *) child_rbs, (void *) rbs, rbs_size);
  366. if (likely(user_mode(child_ptregs))) {
  367. if ((clone_flags & CLONE_SETTLS) && !IS_IA32_PROCESS(regs))
  368. child_ptregs->r13 = regs->r16; /* see sys_clone2() in entry.S */
  369. if (user_stack_base) {
  370. child_ptregs->r12 = user_stack_base + user_stack_size - 16;
  371. child_ptregs->ar_bspstore = user_stack_base;
  372. child_ptregs->ar_rnat = 0;
  373. child_ptregs->loadrs = 0;
  374. }
  375. } else {
  376. /*
  377. * Note: we simply preserve the relative position of
  378. * the stack pointer here. There is no need to
  379. * allocate a scratch area here, since that will have
  380. * been taken care of by the caller of sys_clone()
  381. * already.
  382. */
  383. child_ptregs->r12 = (unsigned long) child_ptregs - 16; /* kernel sp */
  384. child_ptregs->r13 = (unsigned long) p; /* set `current' pointer */
  385. }
  386. child_stack->ar_bspstore = child_rbs + rbs_size;
  387. if (IS_IA32_PROCESS(regs))
  388. child_stack->b0 = (unsigned long) &ia32_ret_from_clone;
  389. else
  390. child_stack->b0 = (unsigned long) &ia64_ret_from_clone;
  391. /* copy parts of thread_struct: */
  392. p->thread.ksp = (unsigned long) child_stack - 16;
  393. /* stop some PSR bits from being inherited.
  394. * the psr.up/psr.pp bits must be cleared on fork but inherited on execve()
  395. * therefore we must specify them explicitly here and not include them in
  396. * IA64_PSR_BITS_TO_CLEAR.
  397. */
  398. child_ptregs->cr_ipsr = ((child_ptregs->cr_ipsr | IA64_PSR_BITS_TO_SET)
  399. & ~(IA64_PSR_BITS_TO_CLEAR | IA64_PSR_PP | IA64_PSR_UP));
  400. /*
  401. * NOTE: The calling convention considers all floating point
  402. * registers in the high partition (fph) to be scratch. Since
  403. * the only way to get to this point is through a system call,
  404. * we know that the values in fph are all dead. Hence, there
  405. * is no need to inherit the fph state from the parent to the
  406. * child and all we have to do is to make sure that
  407. * IA64_THREAD_FPH_VALID is cleared in the child.
  408. *
  409. * XXX We could push this optimization a bit further by
  410. * clearing IA64_THREAD_FPH_VALID on ANY system call.
  411. * However, it's not clear this is worth doing. Also, it
  412. * would be a slight deviation from the normal Linux system
  413. * call behavior where scratch registers are preserved across
  414. * system calls (unless used by the system call itself).
  415. */
  416. # define THREAD_FLAGS_TO_CLEAR (IA64_THREAD_FPH_VALID | IA64_THREAD_DBG_VALID \
  417. | IA64_THREAD_PM_VALID)
  418. # define THREAD_FLAGS_TO_SET 0
  419. p->thread.flags = ((current->thread.flags & ~THREAD_FLAGS_TO_CLEAR)
  420. | THREAD_FLAGS_TO_SET);
  421. ia64_drop_fpu(p); /* don't pick up stale state from a CPU's fph */
  422. #ifdef CONFIG_IA32_SUPPORT
  423. /*
  424. * If we're cloning an IA32 task then save the IA32 extra
  425. * state from the current task to the new task
  426. */
  427. if (IS_IA32_PROCESS(ia64_task_regs(current))) {
  428. ia32_save_state(p);
  429. if (clone_flags & CLONE_SETTLS)
  430. retval = ia32_clone_tls(p, child_ptregs);
  431. /* Copy partially mapped page list */
  432. if (!retval)
  433. retval = ia32_copy_partial_page_list(p, clone_flags);
  434. }
  435. #endif
  436. #ifdef CONFIG_PERFMON
  437. if (current->thread.pfm_context)
  438. pfm_inherit(p, child_ptregs);
  439. #endif
  440. return retval;
  441. }
  442. static void
  443. do_copy_task_regs (struct task_struct *task, struct unw_frame_info *info, void *arg)
  444. {
  445. unsigned long mask, sp, nat_bits = 0, ip, ar_rnat, urbs_end, cfm;
  446. elf_greg_t *dst = arg;
  447. struct pt_regs *pt;
  448. char nat;
  449. int i;
  450. memset(dst, 0, sizeof(elf_gregset_t)); /* don't leak any kernel bits to user-level */
  451. if (unw_unwind_to_user(info) < 0)
  452. return;
  453. unw_get_sp(info, &sp);
  454. pt = (struct pt_regs *) (sp + 16);
  455. urbs_end = ia64_get_user_rbs_end(task, pt, &cfm);
  456. if (ia64_sync_user_rbs(task, info->sw, pt->ar_bspstore, urbs_end) < 0)
  457. return;
  458. ia64_peek(task, info->sw, urbs_end, (long) ia64_rse_rnat_addr((long *) urbs_end),
  459. &ar_rnat);
  460. /*
  461. * coredump format:
  462. * r0-r31
  463. * NaT bits (for r0-r31; bit N == 1 iff rN is a NaT)
  464. * predicate registers (p0-p63)
  465. * b0-b7
  466. * ip cfm user-mask
  467. * ar.rsc ar.bsp ar.bspstore ar.rnat
  468. * ar.ccv ar.unat ar.fpsr ar.pfs ar.lc ar.ec
  469. */
  470. /* r0 is zero */
  471. for (i = 1, mask = (1UL << i); i < 32; ++i) {
  472. unw_get_gr(info, i, &dst[i], &nat);
  473. if (nat)
  474. nat_bits |= mask;
  475. mask <<= 1;
  476. }
  477. dst[32] = nat_bits;
  478. unw_get_pr(info, &dst[33]);
  479. for (i = 0; i < 8; ++i)
  480. unw_get_br(info, i, &dst[34 + i]);
  481. unw_get_rp(info, &ip);
  482. dst[42] = ip + ia64_psr(pt)->ri;
  483. dst[43] = cfm;
  484. dst[44] = pt->cr_ipsr & IA64_PSR_UM;
  485. unw_get_ar(info, UNW_AR_RSC, &dst[45]);
  486. /*
  487. * For bsp and bspstore, unw_get_ar() would return the kernel
  488. * addresses, but we need the user-level addresses instead:
  489. */
  490. dst[46] = urbs_end; /* note: by convention PT_AR_BSP points to the end of the urbs! */
  491. dst[47] = pt->ar_bspstore;
  492. dst[48] = ar_rnat;
  493. unw_get_ar(info, UNW_AR_CCV, &dst[49]);
  494. unw_get_ar(info, UNW_AR_UNAT, &dst[50]);
  495. unw_get_ar(info, UNW_AR_FPSR, &dst[51]);
  496. dst[52] = pt->ar_pfs; /* UNW_AR_PFS is == to pt->cr_ifs for interrupt frames */
  497. unw_get_ar(info, UNW_AR_LC, &dst[53]);
  498. unw_get_ar(info, UNW_AR_EC, &dst[54]);
  499. unw_get_ar(info, UNW_AR_CSD, &dst[55]);
  500. unw_get_ar(info, UNW_AR_SSD, &dst[56]);
  501. }
  502. void
  503. do_dump_task_fpu (struct task_struct *task, struct unw_frame_info *info, void *arg)
  504. {
  505. elf_fpreg_t *dst = arg;
  506. int i;
  507. memset(dst, 0, sizeof(elf_fpregset_t)); /* don't leak any "random" bits */
  508. if (unw_unwind_to_user(info) < 0)
  509. return;
  510. /* f0 is 0.0, f1 is 1.0 */
  511. for (i = 2; i < 32; ++i)
  512. unw_get_fr(info, i, dst + i);
  513. ia64_flush_fph(task);
  514. if ((task->thread.flags & IA64_THREAD_FPH_VALID) != 0)
  515. memcpy(dst + 32, task->thread.fph, 96*16);
  516. }
  517. void
  518. do_copy_regs (struct unw_frame_info *info, void *arg)
  519. {
  520. do_copy_task_regs(current, info, arg);
  521. }
  522. void
  523. do_dump_fpu (struct unw_frame_info *info, void *arg)
  524. {
  525. do_dump_task_fpu(current, info, arg);
  526. }
  527. int
  528. dump_task_regs(struct task_struct *task, elf_gregset_t *regs)
  529. {
  530. struct unw_frame_info tcore_info;
  531. if (current == task) {
  532. unw_init_running(do_copy_regs, regs);
  533. } else {
  534. memset(&tcore_info, 0, sizeof(tcore_info));
  535. unw_init_from_blocked_task(&tcore_info, task);
  536. do_copy_task_regs(task, &tcore_info, regs);
  537. }
  538. return 1;
  539. }
  540. void
  541. ia64_elf_core_copy_regs (struct pt_regs *pt, elf_gregset_t dst)
  542. {
  543. unw_init_running(do_copy_regs, dst);
  544. }
  545. int
  546. dump_task_fpu (struct task_struct *task, elf_fpregset_t *dst)
  547. {
  548. struct unw_frame_info tcore_info;
  549. if (current == task) {
  550. unw_init_running(do_dump_fpu, dst);
  551. } else {
  552. memset(&tcore_info, 0, sizeof(tcore_info));
  553. unw_init_from_blocked_task(&tcore_info, task);
  554. do_dump_task_fpu(task, &tcore_info, dst);
  555. }
  556. return 1;
  557. }
  558. int
  559. dump_fpu (struct pt_regs *pt, elf_fpregset_t dst)
  560. {
  561. unw_init_running(do_dump_fpu, dst);
  562. return 1; /* f0-f31 are always valid so we always return 1 */
  563. }
  564. long
  565. sys_execve (char __user *filename, char __user * __user *argv, char __user * __user *envp,
  566. struct pt_regs *regs)
  567. {
  568. char *fname;
  569. int error;
  570. fname = getname(filename);
  571. error = PTR_ERR(fname);
  572. if (IS_ERR(fname))
  573. goto out;
  574. error = do_execve(fname, argv, envp, regs);
  575. putname(fname);
  576. out:
  577. return error;
  578. }
  579. pid_t
  580. kernel_thread (int (*fn)(void *), void *arg, unsigned long flags)
  581. {
  582. extern void start_kernel_thread (void);
  583. unsigned long *helper_fptr = (unsigned long *) &start_kernel_thread;
  584. struct {
  585. struct switch_stack sw;
  586. struct pt_regs pt;
  587. } regs;
  588. memset(&regs, 0, sizeof(regs));
  589. regs.pt.cr_iip = helper_fptr[0]; /* set entry point (IP) */
  590. regs.pt.r1 = helper_fptr[1]; /* set GP */
  591. regs.pt.r9 = (unsigned long) fn; /* 1st argument */
  592. regs.pt.r11 = (unsigned long) arg; /* 2nd argument */
  593. /* Preserve PSR bits, except for bits 32-34 and 37-45, which we can't read. */
  594. regs.pt.cr_ipsr = ia64_getreg(_IA64_REG_PSR) | IA64_PSR_BN;
  595. regs.pt.cr_ifs = 1UL << 63; /* mark as valid, empty frame */
  596. regs.sw.ar_fpsr = regs.pt.ar_fpsr = ia64_getreg(_IA64_REG_AR_FPSR);
  597. regs.sw.ar_bspstore = (unsigned long) current + IA64_RBS_OFFSET;
  598. regs.sw.pr = (1 << PRED_KERNEL_STACK);
  599. return do_fork(flags | CLONE_VM | CLONE_UNTRACED, 0, &regs.pt, 0, NULL, NULL);
  600. }
  601. EXPORT_SYMBOL(kernel_thread);
  602. /* This gets called from kernel_thread() via ia64_invoke_thread_helper(). */
  603. int
  604. kernel_thread_helper (int (*fn)(void *), void *arg)
  605. {
  606. #ifdef CONFIG_IA32_SUPPORT
  607. if (IS_IA32_PROCESS(ia64_task_regs(current))) {
  608. /* A kernel thread is always a 64-bit process. */
  609. current->thread.map_base = DEFAULT_MAP_BASE;
  610. current->thread.task_size = DEFAULT_TASK_SIZE;
  611. ia64_set_kr(IA64_KR_IO_BASE, current->thread.old_iob);
  612. ia64_set_kr(IA64_KR_TSSD, current->thread.old_k1);
  613. }
  614. #endif
  615. return (*fn)(arg);
  616. }
  617. /*
  618. * Flush thread state. This is called when a thread does an execve().
  619. */
  620. void
  621. flush_thread (void)
  622. {
  623. /*
  624. * Remove function-return probe instances associated with this task
  625. * and put them back on the free list. Do not insert an exit probe for
  626. * this function, it will be disabled by kprobe_flush_task if you do.
  627. */
  628. kprobe_flush_task(current);
  629. /* drop floating-point and debug-register state if it exists: */
  630. current->thread.flags &= ~(IA64_THREAD_FPH_VALID | IA64_THREAD_DBG_VALID);
  631. ia64_drop_fpu(current);
  632. if (IS_IA32_PROCESS(ia64_task_regs(current)))
  633. ia32_drop_partial_page_list(current);
  634. }
  635. /*
  636. * Clean up state associated with current thread. This is called when
  637. * the thread calls exit().
  638. */
  639. void
  640. exit_thread (void)
  641. {
  642. /*
  643. * Remove function-return probe instances associated with this task
  644. * and put them back on the free list. Do not insert an exit probe for
  645. * this function, it will be disabled by kprobe_flush_task if you do.
  646. */
  647. kprobe_flush_task(current);
  648. ia64_drop_fpu(current);
  649. #ifdef CONFIG_PERFMON
  650. /* if needed, stop monitoring and flush state to perfmon context */
  651. if (current->thread.pfm_context)
  652. pfm_exit_thread(current);
  653. /* free debug register resources */
  654. if (current->thread.flags & IA64_THREAD_DBG_VALID)
  655. pfm_release_debug_registers(current);
  656. #endif
  657. if (IS_IA32_PROCESS(ia64_task_regs(current)))
  658. ia32_drop_partial_page_list(current);
  659. }
  660. unsigned long
  661. get_wchan (struct task_struct *p)
  662. {
  663. struct unw_frame_info info;
  664. unsigned long ip;
  665. int count = 0;
  666. /*
  667. * Note: p may not be a blocked task (it could be current or
  668. * another process running on some other CPU. Rather than
  669. * trying to determine if p is really blocked, we just assume
  670. * it's blocked and rely on the unwind routines to fail
  671. * gracefully if the process wasn't really blocked after all.
  672. * --davidm 99/12/15
  673. */
  674. unw_init_from_blocked_task(&info, p);
  675. do {
  676. if (unw_unwind(&info) < 0)
  677. return 0;
  678. unw_get_ip(&info, &ip);
  679. if (!in_sched_functions(ip))
  680. return ip;
  681. } while (count++ < 16);
  682. return 0;
  683. }
  684. void
  685. cpu_halt (void)
  686. {
  687. pal_power_mgmt_info_u_t power_info[8];
  688. unsigned long min_power;
  689. int i, min_power_state;
  690. if (ia64_pal_halt_info(power_info) != 0)
  691. return;
  692. min_power_state = 0;
  693. min_power = power_info[0].pal_power_mgmt_info_s.power_consumption;
  694. for (i = 1; i < 8; ++i)
  695. if (power_info[i].pal_power_mgmt_info_s.im
  696. && power_info[i].pal_power_mgmt_info_s.power_consumption < min_power) {
  697. min_power = power_info[i].pal_power_mgmt_info_s.power_consumption;
  698. min_power_state = i;
  699. }
  700. while (1)
  701. ia64_pal_halt(min_power_state);
  702. }
  703. void
  704. machine_restart (char *restart_cmd)
  705. {
  706. (*efi.reset_system)(EFI_RESET_WARM, 0, 0, NULL);
  707. }
  708. void
  709. machine_halt (void)
  710. {
  711. cpu_halt();
  712. }
  713. void
  714. machine_power_off (void)
  715. {
  716. if (pm_power_off)
  717. pm_power_off();
  718. machine_halt();
  719. }