process_64.c 19 KB

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  1. /* arch/sparc64/kernel/process.c
  2. *
  3. * Copyright (C) 1995, 1996, 2008 David S. Miller (davem@davemloft.net)
  4. * Copyright (C) 1996 Eddie C. Dost (ecd@skynet.be)
  5. * Copyright (C) 1997, 1998 Jakub Jelinek (jj@sunsite.mff.cuni.cz)
  6. */
  7. /*
  8. * This file handles the architecture-dependent parts of process handling..
  9. */
  10. #include <stdarg.h>
  11. #include <linux/errno.h>
  12. #include <linux/export.h>
  13. #include <linux/sched.h>
  14. #include <linux/kernel.h>
  15. #include <linux/mm.h>
  16. #include <linux/fs.h>
  17. #include <linux/smp.h>
  18. #include <linux/stddef.h>
  19. #include <linux/ptrace.h>
  20. #include <linux/slab.h>
  21. #include <linux/user.h>
  22. #include <linux/delay.h>
  23. #include <linux/compat.h>
  24. #include <linux/tick.h>
  25. #include <linux/init.h>
  26. #include <linux/cpu.h>
  27. #include <linux/perf_event.h>
  28. #include <linux/elfcore.h>
  29. #include <linux/sysrq.h>
  30. #include <linux/nmi.h>
  31. #include <asm/uaccess.h>
  32. #include <asm/page.h>
  33. #include <asm/pgalloc.h>
  34. #include <asm/pgtable.h>
  35. #include <asm/processor.h>
  36. #include <asm/pstate.h>
  37. #include <asm/elf.h>
  38. #include <asm/fpumacro.h>
  39. #include <asm/head.h>
  40. #include <asm/cpudata.h>
  41. #include <asm/mmu_context.h>
  42. #include <asm/unistd.h>
  43. #include <asm/hypervisor.h>
  44. #include <asm/syscalls.h>
  45. #include <asm/irq_regs.h>
  46. #include <asm/smp.h>
  47. #include <asm/pcr.h>
  48. #include "kstack.h"
  49. static void sparc64_yield(int cpu)
  50. {
  51. if (tlb_type != hypervisor) {
  52. touch_nmi_watchdog();
  53. return;
  54. }
  55. clear_thread_flag(TIF_POLLING_NRFLAG);
  56. smp_mb__after_clear_bit();
  57. while (!need_resched() && !cpu_is_offline(cpu)) {
  58. unsigned long pstate;
  59. /* Disable interrupts. */
  60. __asm__ __volatile__(
  61. "rdpr %%pstate, %0\n\t"
  62. "andn %0, %1, %0\n\t"
  63. "wrpr %0, %%g0, %%pstate"
  64. : "=&r" (pstate)
  65. : "i" (PSTATE_IE));
  66. if (!need_resched() && !cpu_is_offline(cpu))
  67. sun4v_cpu_yield();
  68. /* Re-enable interrupts. */
  69. __asm__ __volatile__(
  70. "rdpr %%pstate, %0\n\t"
  71. "or %0, %1, %0\n\t"
  72. "wrpr %0, %%g0, %%pstate"
  73. : "=&r" (pstate)
  74. : "i" (PSTATE_IE));
  75. }
  76. set_thread_flag(TIF_POLLING_NRFLAG);
  77. }
  78. /* The idle loop on sparc64. */
  79. void cpu_idle(void)
  80. {
  81. int cpu = smp_processor_id();
  82. set_thread_flag(TIF_POLLING_NRFLAG);
  83. while(1) {
  84. tick_nohz_idle_enter();
  85. rcu_idle_enter();
  86. while (!need_resched() && !cpu_is_offline(cpu))
  87. sparc64_yield(cpu);
  88. rcu_idle_exit();
  89. tick_nohz_idle_exit();
  90. #ifdef CONFIG_HOTPLUG_CPU
  91. if (cpu_is_offline(cpu)) {
  92. sched_preempt_enable_no_resched();
  93. cpu_play_dead();
  94. }
  95. #endif
  96. schedule_preempt_disabled();
  97. }
  98. }
  99. #ifdef CONFIG_COMPAT
  100. static void show_regwindow32(struct pt_regs *regs)
  101. {
  102. struct reg_window32 __user *rw;
  103. struct reg_window32 r_w;
  104. mm_segment_t old_fs;
  105. __asm__ __volatile__ ("flushw");
  106. rw = compat_ptr((unsigned)regs->u_regs[14]);
  107. old_fs = get_fs();
  108. set_fs (USER_DS);
  109. if (copy_from_user (&r_w, rw, sizeof(r_w))) {
  110. set_fs (old_fs);
  111. return;
  112. }
  113. set_fs (old_fs);
  114. printk("l0: %08x l1: %08x l2: %08x l3: %08x "
  115. "l4: %08x l5: %08x l6: %08x l7: %08x\n",
  116. r_w.locals[0], r_w.locals[1], r_w.locals[2], r_w.locals[3],
  117. r_w.locals[4], r_w.locals[5], r_w.locals[6], r_w.locals[7]);
  118. printk("i0: %08x i1: %08x i2: %08x i3: %08x "
  119. "i4: %08x i5: %08x i6: %08x i7: %08x\n",
  120. r_w.ins[0], r_w.ins[1], r_w.ins[2], r_w.ins[3],
  121. r_w.ins[4], r_w.ins[5], r_w.ins[6], r_w.ins[7]);
  122. }
  123. #else
  124. #define show_regwindow32(regs) do { } while (0)
  125. #endif
  126. static void show_regwindow(struct pt_regs *regs)
  127. {
  128. struct reg_window __user *rw;
  129. struct reg_window *rwk;
  130. struct reg_window r_w;
  131. mm_segment_t old_fs;
  132. if ((regs->tstate & TSTATE_PRIV) || !(test_thread_flag(TIF_32BIT))) {
  133. __asm__ __volatile__ ("flushw");
  134. rw = (struct reg_window __user *)
  135. (regs->u_regs[14] + STACK_BIAS);
  136. rwk = (struct reg_window *)
  137. (regs->u_regs[14] + STACK_BIAS);
  138. if (!(regs->tstate & TSTATE_PRIV)) {
  139. old_fs = get_fs();
  140. set_fs (USER_DS);
  141. if (copy_from_user (&r_w, rw, sizeof(r_w))) {
  142. set_fs (old_fs);
  143. return;
  144. }
  145. rwk = &r_w;
  146. set_fs (old_fs);
  147. }
  148. } else {
  149. show_regwindow32(regs);
  150. return;
  151. }
  152. printk("l0: %016lx l1: %016lx l2: %016lx l3: %016lx\n",
  153. rwk->locals[0], rwk->locals[1], rwk->locals[2], rwk->locals[3]);
  154. printk("l4: %016lx l5: %016lx l6: %016lx l7: %016lx\n",
  155. rwk->locals[4], rwk->locals[5], rwk->locals[6], rwk->locals[7]);
  156. printk("i0: %016lx i1: %016lx i2: %016lx i3: %016lx\n",
  157. rwk->ins[0], rwk->ins[1], rwk->ins[2], rwk->ins[3]);
  158. printk("i4: %016lx i5: %016lx i6: %016lx i7: %016lx\n",
  159. rwk->ins[4], rwk->ins[5], rwk->ins[6], rwk->ins[7]);
  160. if (regs->tstate & TSTATE_PRIV)
  161. printk("I7: <%pS>\n", (void *) rwk->ins[7]);
  162. }
  163. void show_regs(struct pt_regs *regs)
  164. {
  165. printk("TSTATE: %016lx TPC: %016lx TNPC: %016lx Y: %08x %s\n", regs->tstate,
  166. regs->tpc, regs->tnpc, regs->y, print_tainted());
  167. printk("TPC: <%pS>\n", (void *) regs->tpc);
  168. printk("g0: %016lx g1: %016lx g2: %016lx g3: %016lx\n",
  169. regs->u_regs[0], regs->u_regs[1], regs->u_regs[2],
  170. regs->u_regs[3]);
  171. printk("g4: %016lx g5: %016lx g6: %016lx g7: %016lx\n",
  172. regs->u_regs[4], regs->u_regs[5], regs->u_regs[6],
  173. regs->u_regs[7]);
  174. printk("o0: %016lx o1: %016lx o2: %016lx o3: %016lx\n",
  175. regs->u_regs[8], regs->u_regs[9], regs->u_regs[10],
  176. regs->u_regs[11]);
  177. printk("o4: %016lx o5: %016lx sp: %016lx ret_pc: %016lx\n",
  178. regs->u_regs[12], regs->u_regs[13], regs->u_regs[14],
  179. regs->u_regs[15]);
  180. printk("RPC: <%pS>\n", (void *) regs->u_regs[15]);
  181. show_regwindow(regs);
  182. show_stack(current, (unsigned long *) regs->u_regs[UREG_FP]);
  183. }
  184. union global_cpu_snapshot global_cpu_snapshot[NR_CPUS];
  185. static DEFINE_SPINLOCK(global_cpu_snapshot_lock);
  186. static void __global_reg_self(struct thread_info *tp, struct pt_regs *regs,
  187. int this_cpu)
  188. {
  189. struct global_reg_snapshot *rp;
  190. flushw_all();
  191. rp = &global_cpu_snapshot[this_cpu].reg;
  192. rp->tstate = regs->tstate;
  193. rp->tpc = regs->tpc;
  194. rp->tnpc = regs->tnpc;
  195. rp->o7 = regs->u_regs[UREG_I7];
  196. if (regs->tstate & TSTATE_PRIV) {
  197. struct reg_window *rw;
  198. rw = (struct reg_window *)
  199. (regs->u_regs[UREG_FP] + STACK_BIAS);
  200. if (kstack_valid(tp, (unsigned long) rw)) {
  201. rp->i7 = rw->ins[7];
  202. rw = (struct reg_window *)
  203. (rw->ins[6] + STACK_BIAS);
  204. if (kstack_valid(tp, (unsigned long) rw))
  205. rp->rpc = rw->ins[7];
  206. }
  207. } else {
  208. rp->i7 = 0;
  209. rp->rpc = 0;
  210. }
  211. rp->thread = tp;
  212. }
  213. /* In order to avoid hangs we do not try to synchronize with the
  214. * global register dump client cpus. The last store they make is to
  215. * the thread pointer, so do a short poll waiting for that to become
  216. * non-NULL.
  217. */
  218. static void __global_reg_poll(struct global_reg_snapshot *gp)
  219. {
  220. int limit = 0;
  221. while (!gp->thread && ++limit < 100) {
  222. barrier();
  223. udelay(1);
  224. }
  225. }
  226. void arch_trigger_all_cpu_backtrace(void)
  227. {
  228. struct thread_info *tp = current_thread_info();
  229. struct pt_regs *regs = get_irq_regs();
  230. unsigned long flags;
  231. int this_cpu, cpu;
  232. if (!regs)
  233. regs = tp->kregs;
  234. spin_lock_irqsave(&global_cpu_snapshot_lock, flags);
  235. memset(global_cpu_snapshot, 0, sizeof(global_cpu_snapshot));
  236. this_cpu = raw_smp_processor_id();
  237. __global_reg_self(tp, regs, this_cpu);
  238. smp_fetch_global_regs();
  239. for_each_online_cpu(cpu) {
  240. struct global_reg_snapshot *gp = &global_cpu_snapshot[cpu].reg;
  241. __global_reg_poll(gp);
  242. tp = gp->thread;
  243. printk("%c CPU[%3d]: TSTATE[%016lx] TPC[%016lx] TNPC[%016lx] TASK[%s:%d]\n",
  244. (cpu == this_cpu ? '*' : ' '), cpu,
  245. gp->tstate, gp->tpc, gp->tnpc,
  246. ((tp && tp->task) ? tp->task->comm : "NULL"),
  247. ((tp && tp->task) ? tp->task->pid : -1));
  248. if (gp->tstate & TSTATE_PRIV) {
  249. printk(" TPC[%pS] O7[%pS] I7[%pS] RPC[%pS]\n",
  250. (void *) gp->tpc,
  251. (void *) gp->o7,
  252. (void *) gp->i7,
  253. (void *) gp->rpc);
  254. } else {
  255. printk(" TPC[%lx] O7[%lx] I7[%lx] RPC[%lx]\n",
  256. gp->tpc, gp->o7, gp->i7, gp->rpc);
  257. }
  258. }
  259. memset(global_cpu_snapshot, 0, sizeof(global_cpu_snapshot));
  260. spin_unlock_irqrestore(&global_cpu_snapshot_lock, flags);
  261. }
  262. #ifdef CONFIG_MAGIC_SYSRQ
  263. static void sysrq_handle_globreg(int key)
  264. {
  265. arch_trigger_all_cpu_backtrace();
  266. }
  267. static struct sysrq_key_op sparc_globalreg_op = {
  268. .handler = sysrq_handle_globreg,
  269. .help_msg = "global-regs(Y)",
  270. .action_msg = "Show Global CPU Regs",
  271. };
  272. static void __global_pmu_self(int this_cpu)
  273. {
  274. struct global_pmu_snapshot *pp;
  275. int i, num;
  276. pp = &global_cpu_snapshot[this_cpu].pmu;
  277. num = 1;
  278. if (tlb_type == hypervisor &&
  279. sun4v_chip_type >= SUN4V_CHIP_NIAGARA4)
  280. num = 4;
  281. for (i = 0; i < num; i++) {
  282. pp->pcr[i] = pcr_ops->read_pcr(i);
  283. pp->pic[i] = pcr_ops->read_pic(i);
  284. }
  285. }
  286. static void __global_pmu_poll(struct global_pmu_snapshot *pp)
  287. {
  288. int limit = 0;
  289. while (!pp->pcr[0] && ++limit < 100) {
  290. barrier();
  291. udelay(1);
  292. }
  293. }
  294. static void pmu_snapshot_all_cpus(void)
  295. {
  296. unsigned long flags;
  297. int this_cpu, cpu;
  298. spin_lock_irqsave(&global_cpu_snapshot_lock, flags);
  299. memset(global_cpu_snapshot, 0, sizeof(global_cpu_snapshot));
  300. this_cpu = raw_smp_processor_id();
  301. __global_pmu_self(this_cpu);
  302. smp_fetch_global_pmu();
  303. for_each_online_cpu(cpu) {
  304. struct global_pmu_snapshot *pp = &global_cpu_snapshot[cpu].pmu;
  305. __global_pmu_poll(pp);
  306. printk("%c CPU[%3d]: PCR[%08lx:%08lx:%08lx:%08lx] PIC[%08lx:%08lx:%08lx:%08lx]\n",
  307. (cpu == this_cpu ? '*' : ' '), cpu,
  308. pp->pcr[0], pp->pcr[1], pp->pcr[2], pp->pcr[3],
  309. pp->pic[0], pp->pic[1], pp->pic[2], pp->pic[3]);
  310. }
  311. memset(global_cpu_snapshot, 0, sizeof(global_cpu_snapshot));
  312. spin_unlock_irqrestore(&global_cpu_snapshot_lock, flags);
  313. }
  314. static void sysrq_handle_globpmu(int key)
  315. {
  316. pmu_snapshot_all_cpus();
  317. }
  318. static struct sysrq_key_op sparc_globalpmu_op = {
  319. .handler = sysrq_handle_globpmu,
  320. .help_msg = "global-pmu(X)",
  321. .action_msg = "Show Global PMU Regs",
  322. };
  323. static int __init sparc_sysrq_init(void)
  324. {
  325. int ret = register_sysrq_key('y', &sparc_globalreg_op);
  326. if (!ret)
  327. ret = register_sysrq_key('x', &sparc_globalpmu_op);
  328. return ret;
  329. }
  330. core_initcall(sparc_sysrq_init);
  331. #endif
  332. unsigned long thread_saved_pc(struct task_struct *tsk)
  333. {
  334. struct thread_info *ti = task_thread_info(tsk);
  335. unsigned long ret = 0xdeadbeefUL;
  336. if (ti && ti->ksp) {
  337. unsigned long *sp;
  338. sp = (unsigned long *)(ti->ksp + STACK_BIAS);
  339. if (((unsigned long)sp & (sizeof(long) - 1)) == 0UL &&
  340. sp[14]) {
  341. unsigned long *fp;
  342. fp = (unsigned long *)(sp[14] + STACK_BIAS);
  343. if (((unsigned long)fp & (sizeof(long) - 1)) == 0UL)
  344. ret = fp[15];
  345. }
  346. }
  347. return ret;
  348. }
  349. /* Free current thread data structures etc.. */
  350. void exit_thread(void)
  351. {
  352. struct thread_info *t = current_thread_info();
  353. if (t->utraps) {
  354. if (t->utraps[0] < 2)
  355. kfree (t->utraps);
  356. else
  357. t->utraps[0]--;
  358. }
  359. }
  360. void flush_thread(void)
  361. {
  362. struct thread_info *t = current_thread_info();
  363. struct mm_struct *mm;
  364. mm = t->task->mm;
  365. if (mm)
  366. tsb_context_switch(mm);
  367. set_thread_wsaved(0);
  368. /* Clear FPU register state. */
  369. t->fpsaved[0] = 0;
  370. }
  371. /* It's a bit more tricky when 64-bit tasks are involved... */
  372. static unsigned long clone_stackframe(unsigned long csp, unsigned long psp)
  373. {
  374. bool stack_64bit = test_thread_64bit_stack(psp);
  375. unsigned long fp, distance, rval;
  376. if (stack_64bit) {
  377. csp += STACK_BIAS;
  378. psp += STACK_BIAS;
  379. __get_user(fp, &(((struct reg_window __user *)psp)->ins[6]));
  380. fp += STACK_BIAS;
  381. if (test_thread_flag(TIF_32BIT))
  382. fp &= 0xffffffff;
  383. } else
  384. __get_user(fp, &(((struct reg_window32 __user *)psp)->ins[6]));
  385. /* Now align the stack as this is mandatory in the Sparc ABI
  386. * due to how register windows work. This hides the
  387. * restriction from thread libraries etc.
  388. */
  389. csp &= ~15UL;
  390. distance = fp - psp;
  391. rval = (csp - distance);
  392. if (copy_in_user((void __user *) rval, (void __user *) psp, distance))
  393. rval = 0;
  394. else if (!stack_64bit) {
  395. if (put_user(((u32)csp),
  396. &(((struct reg_window32 __user *)rval)->ins[6])))
  397. rval = 0;
  398. } else {
  399. if (put_user(((u64)csp - STACK_BIAS),
  400. &(((struct reg_window __user *)rval)->ins[6])))
  401. rval = 0;
  402. else
  403. rval = rval - STACK_BIAS;
  404. }
  405. return rval;
  406. }
  407. /* Standard stuff. */
  408. static inline void shift_window_buffer(int first_win, int last_win,
  409. struct thread_info *t)
  410. {
  411. int i;
  412. for (i = first_win; i < last_win; i++) {
  413. t->rwbuf_stkptrs[i] = t->rwbuf_stkptrs[i+1];
  414. memcpy(&t->reg_window[i], &t->reg_window[i+1],
  415. sizeof(struct reg_window));
  416. }
  417. }
  418. void synchronize_user_stack(void)
  419. {
  420. struct thread_info *t = current_thread_info();
  421. unsigned long window;
  422. flush_user_windows();
  423. if ((window = get_thread_wsaved()) != 0) {
  424. window -= 1;
  425. do {
  426. struct reg_window *rwin = &t->reg_window[window];
  427. int winsize = sizeof(struct reg_window);
  428. unsigned long sp;
  429. sp = t->rwbuf_stkptrs[window];
  430. if (test_thread_64bit_stack(sp))
  431. sp += STACK_BIAS;
  432. else
  433. winsize = sizeof(struct reg_window32);
  434. if (!copy_to_user((char __user *)sp, rwin, winsize)) {
  435. shift_window_buffer(window, get_thread_wsaved() - 1, t);
  436. set_thread_wsaved(get_thread_wsaved() - 1);
  437. }
  438. } while (window--);
  439. }
  440. }
  441. static void stack_unaligned(unsigned long sp)
  442. {
  443. siginfo_t info;
  444. info.si_signo = SIGBUS;
  445. info.si_errno = 0;
  446. info.si_code = BUS_ADRALN;
  447. info.si_addr = (void __user *) sp;
  448. info.si_trapno = 0;
  449. force_sig_info(SIGBUS, &info, current);
  450. }
  451. void fault_in_user_windows(void)
  452. {
  453. struct thread_info *t = current_thread_info();
  454. unsigned long window;
  455. flush_user_windows();
  456. window = get_thread_wsaved();
  457. if (likely(window != 0)) {
  458. window -= 1;
  459. do {
  460. struct reg_window *rwin = &t->reg_window[window];
  461. int winsize = sizeof(struct reg_window);
  462. unsigned long sp;
  463. sp = t->rwbuf_stkptrs[window];
  464. if (test_thread_64bit_stack(sp))
  465. sp += STACK_BIAS;
  466. else
  467. winsize = sizeof(struct reg_window32);
  468. if (unlikely(sp & 0x7UL))
  469. stack_unaligned(sp);
  470. if (unlikely(copy_to_user((char __user *)sp,
  471. rwin, winsize)))
  472. goto barf;
  473. } while (window--);
  474. }
  475. set_thread_wsaved(0);
  476. return;
  477. barf:
  478. set_thread_wsaved(window + 1);
  479. do_exit(SIGILL);
  480. }
  481. asmlinkage long sparc_do_fork(unsigned long clone_flags,
  482. unsigned long stack_start,
  483. struct pt_regs *regs,
  484. unsigned long stack_size)
  485. {
  486. int __user *parent_tid_ptr, *child_tid_ptr;
  487. unsigned long orig_i1 = regs->u_regs[UREG_I1];
  488. long ret;
  489. #ifdef CONFIG_COMPAT
  490. if (test_thread_flag(TIF_32BIT)) {
  491. parent_tid_ptr = compat_ptr(regs->u_regs[UREG_I2]);
  492. child_tid_ptr = compat_ptr(regs->u_regs[UREG_I4]);
  493. } else
  494. #endif
  495. {
  496. parent_tid_ptr = (int __user *) regs->u_regs[UREG_I2];
  497. child_tid_ptr = (int __user *) regs->u_regs[UREG_I4];
  498. }
  499. ret = do_fork(clone_flags, stack_start, stack_size,
  500. parent_tid_ptr, child_tid_ptr);
  501. /* If we get an error and potentially restart the system
  502. * call, we're screwed because copy_thread() clobbered
  503. * the parent's %o1. So detect that case and restore it
  504. * here.
  505. */
  506. if ((unsigned long)ret >= -ERESTART_RESTARTBLOCK)
  507. regs->u_regs[UREG_I1] = orig_i1;
  508. return ret;
  509. }
  510. /* Copy a Sparc thread. The fork() return value conventions
  511. * under SunOS are nothing short of bletcherous:
  512. * Parent --> %o0 == childs pid, %o1 == 0
  513. * Child --> %o0 == parents pid, %o1 == 1
  514. */
  515. int copy_thread(unsigned long clone_flags, unsigned long sp,
  516. unsigned long arg, struct task_struct *p)
  517. {
  518. struct thread_info *t = task_thread_info(p);
  519. struct pt_regs *regs = current_pt_regs();
  520. struct sparc_stackf *parent_sf;
  521. unsigned long child_stack_sz;
  522. char *child_trap_frame;
  523. /* Calculate offset to stack_frame & pt_regs */
  524. child_stack_sz = (STACKFRAME_SZ + TRACEREG_SZ);
  525. child_trap_frame = (task_stack_page(p) +
  526. (THREAD_SIZE - child_stack_sz));
  527. t->new_child = 1;
  528. t->ksp = ((unsigned long) child_trap_frame) - STACK_BIAS;
  529. t->kregs = (struct pt_regs *) (child_trap_frame +
  530. sizeof(struct sparc_stackf));
  531. t->fpsaved[0] = 0;
  532. if (unlikely(p->flags & PF_KTHREAD)) {
  533. memset(child_trap_frame, 0, child_stack_sz);
  534. __thread_flag_byte_ptr(t)[TI_FLAG_BYTE_CWP] =
  535. (current_pt_regs()->tstate + 1) & TSTATE_CWP;
  536. t->current_ds = ASI_P;
  537. t->kregs->u_regs[UREG_G1] = sp; /* function */
  538. t->kregs->u_regs[UREG_G2] = arg;
  539. return 0;
  540. }
  541. parent_sf = ((struct sparc_stackf *) regs) - 1;
  542. memcpy(child_trap_frame, parent_sf, child_stack_sz);
  543. if (t->flags & _TIF_32BIT) {
  544. sp &= 0x00000000ffffffffUL;
  545. regs->u_regs[UREG_FP] &= 0x00000000ffffffffUL;
  546. }
  547. t->kregs->u_regs[UREG_FP] = sp;
  548. __thread_flag_byte_ptr(t)[TI_FLAG_BYTE_CWP] =
  549. (regs->tstate + 1) & TSTATE_CWP;
  550. t->current_ds = ASI_AIUS;
  551. if (sp != regs->u_regs[UREG_FP]) {
  552. unsigned long csp;
  553. csp = clone_stackframe(sp, regs->u_regs[UREG_FP]);
  554. if (!csp)
  555. return -EFAULT;
  556. t->kregs->u_regs[UREG_FP] = csp;
  557. }
  558. if (t->utraps)
  559. t->utraps[0]++;
  560. /* Set the return value for the child. */
  561. t->kregs->u_regs[UREG_I0] = current->pid;
  562. t->kregs->u_regs[UREG_I1] = 1;
  563. /* Set the second return value for the parent. */
  564. regs->u_regs[UREG_I1] = 0;
  565. if (clone_flags & CLONE_SETTLS)
  566. t->kregs->u_regs[UREG_G7] = regs->u_regs[UREG_I3];
  567. return 0;
  568. }
  569. typedef struct {
  570. union {
  571. unsigned int pr_regs[32];
  572. unsigned long pr_dregs[16];
  573. } pr_fr;
  574. unsigned int __unused;
  575. unsigned int pr_fsr;
  576. unsigned char pr_qcnt;
  577. unsigned char pr_q_entrysize;
  578. unsigned char pr_en;
  579. unsigned int pr_q[64];
  580. } elf_fpregset_t32;
  581. /*
  582. * fill in the fpu structure for a core dump.
  583. */
  584. int dump_fpu (struct pt_regs * regs, elf_fpregset_t * fpregs)
  585. {
  586. unsigned long *kfpregs = current_thread_info()->fpregs;
  587. unsigned long fprs = current_thread_info()->fpsaved[0];
  588. if (test_thread_flag(TIF_32BIT)) {
  589. elf_fpregset_t32 *fpregs32 = (elf_fpregset_t32 *)fpregs;
  590. if (fprs & FPRS_DL)
  591. memcpy(&fpregs32->pr_fr.pr_regs[0], kfpregs,
  592. sizeof(unsigned int) * 32);
  593. else
  594. memset(&fpregs32->pr_fr.pr_regs[0], 0,
  595. sizeof(unsigned int) * 32);
  596. fpregs32->pr_qcnt = 0;
  597. fpregs32->pr_q_entrysize = 8;
  598. memset(&fpregs32->pr_q[0], 0,
  599. (sizeof(unsigned int) * 64));
  600. if (fprs & FPRS_FEF) {
  601. fpregs32->pr_fsr = (unsigned int) current_thread_info()->xfsr[0];
  602. fpregs32->pr_en = 1;
  603. } else {
  604. fpregs32->pr_fsr = 0;
  605. fpregs32->pr_en = 0;
  606. }
  607. } else {
  608. if(fprs & FPRS_DL)
  609. memcpy(&fpregs->pr_regs[0], kfpregs,
  610. sizeof(unsigned int) * 32);
  611. else
  612. memset(&fpregs->pr_regs[0], 0,
  613. sizeof(unsigned int) * 32);
  614. if(fprs & FPRS_DU)
  615. memcpy(&fpregs->pr_regs[16], kfpregs+16,
  616. sizeof(unsigned int) * 32);
  617. else
  618. memset(&fpregs->pr_regs[16], 0,
  619. sizeof(unsigned int) * 32);
  620. if(fprs & FPRS_FEF) {
  621. fpregs->pr_fsr = current_thread_info()->xfsr[0];
  622. fpregs->pr_gsr = current_thread_info()->gsr[0];
  623. } else {
  624. fpregs->pr_fsr = fpregs->pr_gsr = 0;
  625. }
  626. fpregs->pr_fprs = fprs;
  627. }
  628. return 1;
  629. }
  630. EXPORT_SYMBOL(dump_fpu);
  631. unsigned long get_wchan(struct task_struct *task)
  632. {
  633. unsigned long pc, fp, bias = 0;
  634. struct thread_info *tp;
  635. struct reg_window *rw;
  636. unsigned long ret = 0;
  637. int count = 0;
  638. if (!task || task == current ||
  639. task->state == TASK_RUNNING)
  640. goto out;
  641. tp = task_thread_info(task);
  642. bias = STACK_BIAS;
  643. fp = task_thread_info(task)->ksp + bias;
  644. do {
  645. if (!kstack_valid(tp, fp))
  646. break;
  647. rw = (struct reg_window *) fp;
  648. pc = rw->ins[7];
  649. if (!in_sched_functions(pc)) {
  650. ret = pc;
  651. goto out;
  652. }
  653. fp = rw->ins[6] + bias;
  654. } while (++count < 16);
  655. out:
  656. return ret;
  657. }