linux/arch/powerpc/kernel/process.c
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   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/module.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
  41#include <asm/pgtable.h>
  42#include <asm/uaccess.h>
  43#include <asm/system.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/syscalls.h>
  51#ifdef CONFIG_PPC64
  52#include <asm/firmware.h>
  53#endif
  54#include <linux/kprobes.h>
  55#include <linux/kdebug.h>
  56
  57extern unsigned long _get_SP(void);
  58
  59#ifndef CONFIG_SMP
  60struct task_struct *last_task_used_math = NULL;
  61struct task_struct *last_task_used_altivec = NULL;
  62struct task_struct *last_task_used_vsx = NULL;
  63struct task_struct *last_task_used_spe = NULL;
  64#endif
  65
  66/*
  67 * Make sure the floating-point register state in the
  68 * the thread_struct is up to date for task tsk.
  69 */
  70void flush_fp_to_thread(struct task_struct *tsk)
  71{
  72        if (tsk->thread.regs) {
  73                /*
  74                 * We need to disable preemption here because if we didn't,
  75                 * another process could get scheduled after the regs->msr
  76                 * test but before we have finished saving the FP registers
  77                 * to the thread_struct.  That process could take over the
  78                 * FPU, and then when we get scheduled again we would store
  79                 * bogus values for the remaining FP registers.
  80                 */
  81                preempt_disable();
  82                if (tsk->thread.regs->msr & MSR_FP) {
  83#ifdef CONFIG_SMP
  84                        /*
  85                         * This should only ever be called for current or
  86                         * for a stopped child process.  Since we save away
  87                         * the FP register state on context switch on SMP,
  88                         * there is something wrong if a stopped child appears
  89                         * to still have its FP state in the CPU registers.
  90                         */
  91                        BUG_ON(tsk != current);
  92#endif
  93                        giveup_fpu(tsk);
  94                }
  95                preempt_enable();
  96        }
  97}
  98
  99void enable_kernel_fp(void)
 100{
 101        WARN_ON(preemptible());
 102
 103#ifdef CONFIG_SMP
 104        if (current->thread.regs && (current->thread.regs->msr & MSR_FP))
 105                giveup_fpu(current);
 106        else
 107                giveup_fpu(NULL);       /* just enables FP for kernel */
 108#else
 109        giveup_fpu(last_task_used_math);
 110#endif /* CONFIG_SMP */
 111}
 112EXPORT_SYMBOL(enable_kernel_fp);
 113
 114#ifdef CONFIG_ALTIVEC
 115void enable_kernel_altivec(void)
 116{
 117        WARN_ON(preemptible());
 118
 119#ifdef CONFIG_SMP
 120        if (current->thread.regs && (current->thread.regs->msr & MSR_VEC))
 121                giveup_altivec(current);
 122        else
 123                giveup_altivec(NULL);   /* just enable AltiVec for kernel - force */
 124#else
 125        giveup_altivec(last_task_used_altivec);
 126#endif /* CONFIG_SMP */
 127}
 128EXPORT_SYMBOL(enable_kernel_altivec);
 129
 130/*
 131 * Make sure the VMX/Altivec register state in the
 132 * the thread_struct is up to date for task tsk.
 133 */
 134void flush_altivec_to_thread(struct task_struct *tsk)
 135{
 136        if (tsk->thread.regs) {
 137                preempt_disable();
 138                if (tsk->thread.regs->msr & MSR_VEC) {
 139#ifdef CONFIG_SMP
 140                        BUG_ON(tsk != current);
 141#endif
 142                        giveup_altivec(tsk);
 143                }
 144                preempt_enable();
 145        }
 146}
 147#endif /* CONFIG_ALTIVEC */
 148
 149#ifdef CONFIG_VSX
 150#if 0
 151/* not currently used, but some crazy RAID module might want to later */
 152void enable_kernel_vsx(void)
 153{
 154        WARN_ON(preemptible());
 155
 156#ifdef CONFIG_SMP
 157        if (current->thread.regs && (current->thread.regs->msr & MSR_VSX))
 158                giveup_vsx(current);
 159        else
 160                giveup_vsx(NULL);       /* just enable vsx for kernel - force */
 161#else
 162        giveup_vsx(last_task_used_vsx);
 163#endif /* CONFIG_SMP */
 164}
 165EXPORT_SYMBOL(enable_kernel_vsx);
 166#endif
 167
 168void giveup_vsx(struct task_struct *tsk)
 169{
 170        giveup_fpu(tsk);
 171        giveup_altivec(tsk);
 172        __giveup_vsx(tsk);
 173}
 174
 175void flush_vsx_to_thread(struct task_struct *tsk)
 176{
 177        if (tsk->thread.regs) {
 178                preempt_disable();
 179                if (tsk->thread.regs->msr & MSR_VSX) {
 180#ifdef CONFIG_SMP
 181                        BUG_ON(tsk != current);
 182#endif
 183                        giveup_vsx(tsk);
 184                }
 185                preempt_enable();
 186        }
 187}
 188#endif /* CONFIG_VSX */
 189
 190#ifdef CONFIG_SPE
 191
 192void enable_kernel_spe(void)
 193{
 194        WARN_ON(preemptible());
 195
 196#ifdef CONFIG_SMP
 197        if (current->thread.regs && (current->thread.regs->msr & MSR_SPE))
 198                giveup_spe(current);
 199        else
 200                giveup_spe(NULL);       /* just enable SPE for kernel - force */
 201#else
 202        giveup_spe(last_task_used_spe);
 203#endif /* __SMP __ */
 204}
 205EXPORT_SYMBOL(enable_kernel_spe);
 206
 207void flush_spe_to_thread(struct task_struct *tsk)
 208{
 209        if (tsk->thread.regs) {
 210                preempt_disable();
 211                if (tsk->thread.regs->msr & MSR_SPE) {
 212#ifdef CONFIG_SMP
 213                        BUG_ON(tsk != current);
 214#endif
 215                        giveup_spe(tsk);
 216                }
 217                preempt_enable();
 218        }
 219}
 220#endif /* CONFIG_SPE */
 221
 222#ifndef CONFIG_SMP
 223/*
 224 * If we are doing lazy switching of CPU state (FP, altivec or SPE),
 225 * and the current task has some state, discard it.
 226 */
 227void discard_lazy_cpu_state(void)
 228{
 229        preempt_disable();
 230        if (last_task_used_math == current)
 231                last_task_used_math = NULL;
 232#ifdef CONFIG_ALTIVEC
 233        if (last_task_used_altivec == current)
 234                last_task_used_altivec = NULL;
 235#endif /* CONFIG_ALTIVEC */
 236#ifdef CONFIG_VSX
 237        if (last_task_used_vsx == current)
 238                last_task_used_vsx = NULL;
 239#endif /* CONFIG_VSX */
 240#ifdef CONFIG_SPE
 241        if (last_task_used_spe == current)
 242                last_task_used_spe = NULL;
 243#endif
 244        preempt_enable();
 245}
 246#endif /* CONFIG_SMP */
 247
 248void do_dabr(struct pt_regs *regs, unsigned long address,
 249                    unsigned long error_code)
 250{
 251        siginfo_t info;
 252
 253        if (notify_die(DIE_DABR_MATCH, "dabr_match", regs, error_code,
 254                        11, SIGSEGV) == NOTIFY_STOP)
 255                return;
 256
 257        if (debugger_dabr_match(regs))
 258                return;
 259
 260        /* Clear the DAC and struct entries.  One shot trigger */
 261#if defined(CONFIG_BOOKE)
 262        mtspr(SPRN_DBCR0, mfspr(SPRN_DBCR0) & ~(DBSR_DAC1R | DBSR_DAC1W
 263                                                        | DBCR0_IDM));
 264#endif
 265
 266        /* Clear the DABR */
 267        set_dabr(0);
 268
 269        /* Deliver the signal to userspace */
 270        info.si_signo = SIGTRAP;
 271        info.si_errno = 0;
 272        info.si_code = TRAP_HWBKPT;
 273        info.si_addr = (void __user *)address;
 274        force_sig_info(SIGTRAP, &info, current);
 275}
 276
 277static DEFINE_PER_CPU(unsigned long, current_dabr);
 278
 279int set_dabr(unsigned long dabr)
 280{
 281        __get_cpu_var(current_dabr) = dabr;
 282
 283        if (ppc_md.set_dabr)
 284                return ppc_md.set_dabr(dabr);
 285
 286        /* XXX should we have a CPU_FTR_HAS_DABR ? */
 287#if defined(CONFIG_BOOKE)
 288        mtspr(SPRN_DAC1, dabr);
 289#elif defined(CONFIG_PPC_BOOK3S)
 290        mtspr(SPRN_DABR, dabr);
 291#endif
 292
 293
 294        return 0;
 295}
 296
 297#ifdef CONFIG_PPC64
 298DEFINE_PER_CPU(struct cpu_usage, cpu_usage_array);
 299#endif
 300
 301struct task_struct *__switch_to(struct task_struct *prev,
 302        struct task_struct *new)
 303{
 304        struct thread_struct *new_thread, *old_thread;
 305        unsigned long flags;
 306        struct task_struct *last;
 307
 308#ifdef CONFIG_SMP
 309        /* avoid complexity of lazy save/restore of fpu
 310         * by just saving it every time we switch out if
 311         * this task used the fpu during the last quantum.
 312         *
 313         * If it tries to use the fpu again, it'll trap and
 314         * reload its fp regs.  So we don't have to do a restore
 315         * every switch, just a save.
 316         *  -- Cort
 317         */
 318        if (prev->thread.regs && (prev->thread.regs->msr & MSR_FP))
 319                giveup_fpu(prev);
 320#ifdef CONFIG_ALTIVEC
 321        /*
 322         * If the previous thread used altivec in the last quantum
 323         * (thus changing altivec regs) then save them.
 324         * We used to check the VRSAVE register but not all apps
 325         * set it, so we don't rely on it now (and in fact we need
 326         * to save & restore VSCR even if VRSAVE == 0).  -- paulus
 327         *
 328         * On SMP we always save/restore altivec regs just to avoid the
 329         * complexity of changing processors.
 330         *  -- Cort
 331         */
 332        if (prev->thread.regs && (prev->thread.regs->msr & MSR_VEC))
 333                giveup_altivec(prev);
 334#endif /* CONFIG_ALTIVEC */
 335#ifdef CONFIG_VSX
 336        if (prev->thread.regs && (prev->thread.regs->msr & MSR_VSX))
 337                /* VMX and FPU registers are already save here */
 338                __giveup_vsx(prev);
 339#endif /* CONFIG_VSX */
 340#ifdef CONFIG_SPE
 341        /*
 342         * If the previous thread used spe in the last quantum
 343         * (thus changing spe regs) then save them.
 344         *
 345         * On SMP we always save/restore spe regs just to avoid the
 346         * complexity of changing processors.
 347         */
 348        if ((prev->thread.regs && (prev->thread.regs->msr & MSR_SPE)))
 349                giveup_spe(prev);
 350#endif /* CONFIG_SPE */
 351
 352#else  /* CONFIG_SMP */
 353#ifdef CONFIG_ALTIVEC
 354        /* Avoid the trap.  On smp this this never happens since
 355         * we don't set last_task_used_altivec -- Cort
 356         */
 357        if (new->thread.regs && last_task_used_altivec == new)
 358                new->thread.regs->msr |= MSR_VEC;
 359#endif /* CONFIG_ALTIVEC */
 360#ifdef CONFIG_VSX
 361        if (new->thread.regs && last_task_used_vsx == new)
 362                new->thread.regs->msr |= MSR_VSX;
 363#endif /* CONFIG_VSX */
 364#ifdef CONFIG_SPE
 365        /* Avoid the trap.  On smp this this never happens since
 366         * we don't set last_task_used_spe
 367         */
 368        if (new->thread.regs && last_task_used_spe == new)
 369                new->thread.regs->msr |= MSR_SPE;
 370#endif /* CONFIG_SPE */
 371
 372#endif /* CONFIG_SMP */
 373
 374#if defined(CONFIG_BOOKE)
 375        /* If new thread DAC (HW breakpoint) is the same then leave it */
 376        if (new->thread.dabr)
 377                set_dabr(new->thread.dabr);
 378#else
 379        if (unlikely(__get_cpu_var(current_dabr) != new->thread.dabr))
 380                set_dabr(new->thread.dabr);
 381#endif
 382
 383
 384        new_thread = &new->thread;
 385        old_thread = &current->thread;
 386
 387#ifdef CONFIG_PPC64
 388        /*
 389         * Collect processor utilization data per process
 390         */
 391        if (firmware_has_feature(FW_FEATURE_SPLPAR)) {
 392                struct cpu_usage *cu = &__get_cpu_var(cpu_usage_array);
 393                long unsigned start_tb, current_tb;
 394                start_tb = old_thread->start_tb;
 395                cu->current_tb = current_tb = mfspr(SPRN_PURR);
 396                old_thread->accum_tb += (current_tb - start_tb);
 397                new_thread->start_tb = current_tb;
 398        }
 399#endif
 400
 401        local_irq_save(flags);
 402
 403        account_system_vtime(current);
 404        account_process_vtime(current);
 405        calculate_steal_time();
 406
 407        /*
 408         * We can't take a PMU exception inside _switch() since there is a
 409         * window where the kernel stack SLB and the kernel stack are out
 410         * of sync. Hard disable here.
 411         */
 412        hard_irq_disable();
 413        last = _switch(old_thread, new_thread);
 414
 415        local_irq_restore(flags);
 416
 417        return last;
 418}
 419
 420static int instructions_to_print = 16;
 421
 422static void show_instructions(struct pt_regs *regs)
 423{
 424        int i;
 425        unsigned long pc = regs->nip - (instructions_to_print * 3 / 4 *
 426                        sizeof(int));
 427
 428        printk("Instruction dump:");
 429
 430        for (i = 0; i < instructions_to_print; i++) {
 431                int instr;
 432
 433                if (!(i % 8))
 434                        printk("\n");
 435
 436#if !defined(CONFIG_BOOKE)
 437                /* If executing with the IMMU off, adjust pc rather
 438                 * than print XXXXXXXX.
 439                 */
 440                if (!(regs->msr & MSR_IR))
 441                        pc = (unsigned long)phys_to_virt(pc);
 442#endif
 443
 444                /* We use __get_user here *only* to avoid an OOPS on a
 445                 * bad address because the pc *should* only be a
 446                 * kernel address.
 447                 */
 448                if (!__kernel_text_address(pc) ||
 449                     __get_user(instr, (unsigned int __user *)pc)) {
 450                        printk("XXXXXXXX ");
 451                } else {
 452                        if (regs->nip == pc)
 453                                printk("<%08x> ", instr);
 454                        else
 455                                printk("%08x ", instr);
 456                }
 457
 458                pc += sizeof(int);
 459        }
 460
 461        printk("\n");
 462}
 463
 464static struct regbit {
 465        unsigned long bit;
 466        const char *name;
 467} msr_bits[] = {
 468        {MSR_EE,        "EE"},
 469        {MSR_PR,        "PR"},
 470        {MSR_FP,        "FP"},
 471        {MSR_VEC,       "VEC"},
 472        {MSR_VSX,       "VSX"},
 473        {MSR_ME,        "ME"},
 474        {MSR_CE,        "CE"},
 475        {MSR_DE,        "DE"},
 476        {MSR_IR,        "IR"},
 477        {MSR_DR,        "DR"},
 478        {0,             NULL}
 479};
 480
 481static void printbits(unsigned long val, struct regbit *bits)
 482{
 483        const char *sep = "";
 484
 485        printk("<");
 486        for (; bits->bit; ++bits)
 487                if (val & bits->bit) {
 488                        printk("%s%s", sep, bits->name);
 489                        sep = ",";
 490                }
 491        printk(">");
 492}
 493
 494#ifdef CONFIG_PPC64
 495#define REG             "%016lx"
 496#define REGS_PER_LINE   4
 497#define LAST_VOLATILE   13
 498#else
 499#define REG             "%08lx"
 500#define REGS_PER_LINE   8
 501#define LAST_VOLATILE   12
 502#endif
 503
 504void show_regs(struct pt_regs * regs)
 505{
 506        int i, trap;
 507
 508        printk("NIP: "REG" LR: "REG" CTR: "REG"\n",
 509               regs->nip, regs->link, regs->ctr);
 510        printk("REGS: %p TRAP: %04lx   %s  (%s)\n",
 511               regs, regs->trap, print_tainted(), init_utsname()->release);
 512        printk("MSR: "REG" ", regs->msr);
 513        printbits(regs->msr, msr_bits);
 514        printk("  CR: %08lx  XER: %08lx\n", regs->ccr, regs->xer);
 515        trap = TRAP(regs);
 516        if (trap == 0x300 || trap == 0x600)
 517#if defined(CONFIG_4xx) || defined(CONFIG_BOOKE)
 518                printk("DEAR: "REG", ESR: "REG"\n", regs->dar, regs->dsisr);
 519#else
 520                printk("DAR: "REG", DSISR: "REG"\n", regs->dar, regs->dsisr);
 521#endif
 522        printk("TASK = %p[%d] '%s' THREAD: %p",
 523               current, task_pid_nr(current), current->comm, task_thread_info(current));
 524
 525#ifdef CONFIG_SMP
 526        printk(" CPU: %d", raw_smp_processor_id());
 527#endif /* CONFIG_SMP */
 528
 529        for (i = 0;  i < 32;  i++) {
 530                if ((i % REGS_PER_LINE) == 0)
 531                        printk("\nGPR%02d: ", i);
 532                printk(REG " ", regs->gpr[i]);
 533                if (i == LAST_VOLATILE && !FULL_REGS(regs))
 534                        break;
 535        }
 536        printk("\n");
 537#ifdef CONFIG_KALLSYMS
 538        /*
 539         * Lookup NIP late so we have the best change of getting the
 540         * above info out without failing
 541         */
 542        printk("NIP ["REG"] %pS\n", regs->nip, (void *)regs->nip);
 543        printk("LR ["REG"] %pS\n", regs->link, (void *)regs->link);
 544#endif
 545        show_stack(current, (unsigned long *) regs->gpr[1]);
 546        if (!user_mode(regs))
 547                show_instructions(regs);
 548}
 549
 550void exit_thread(void)
 551{
 552        discard_lazy_cpu_state();
 553}
 554
 555void flush_thread(void)
 556{
 557        discard_lazy_cpu_state();
 558
 559        if (current->thread.dabr) {
 560                current->thread.dabr = 0;
 561                set_dabr(0);
 562
 563#if defined(CONFIG_BOOKE)
 564                current->thread.dbcr0 &= ~(DBSR_DAC1R | DBSR_DAC1W);
 565#endif
 566        }
 567}
 568
 569void
 570release_thread(struct task_struct *t)
 571{
 572}
 573
 574/*
 575 * This gets called before we allocate a new thread and copy
 576 * the current task into it.
 577 */
 578void prepare_to_copy(struct task_struct *tsk)
 579{
 580        flush_fp_to_thread(current);
 581        flush_altivec_to_thread(current);
 582        flush_vsx_to_thread(current);
 583        flush_spe_to_thread(current);
 584}
 585
 586/*
 587 * Copy a thread..
 588 */
 589int copy_thread(unsigned long clone_flags, unsigned long usp,
 590                unsigned long unused, struct task_struct *p,
 591                struct pt_regs *regs)
 592{
 593        struct pt_regs *childregs, *kregs;
 594        extern void ret_from_fork(void);
 595        unsigned long sp = (unsigned long)task_stack_page(p) + THREAD_SIZE;
 596
 597        CHECK_FULL_REGS(regs);
 598        /* Copy registers */
 599        sp -= sizeof(struct pt_regs);
 600        childregs = (struct pt_regs *) sp;
 601        *childregs = *regs;
 602        if ((childregs->msr & MSR_PR) == 0) {
 603                /* for kernel thread, set `current' and stackptr in new task */
 604                childregs->gpr[1] = sp + sizeof(struct pt_regs);
 605#ifdef CONFIG_PPC32
 606                childregs->gpr[2] = (unsigned long) p;
 607#else
 608                clear_tsk_thread_flag(p, TIF_32BIT);
 609#endif
 610                p->thread.regs = NULL;  /* no user register state */
 611        } else {
 612                childregs->gpr[1] = usp;
 613                p->thread.regs = childregs;
 614                if (clone_flags & CLONE_SETTLS) {
 615#ifdef CONFIG_PPC64
 616                        if (!test_thread_flag(TIF_32BIT))
 617                                childregs->gpr[13] = childregs->gpr[6];
 618                        else
 619#endif
 620                                childregs->gpr[2] = childregs->gpr[6];
 621                }
 622        }
 623        childregs->gpr[3] = 0;  /* Result from fork() */
 624        sp -= STACK_FRAME_OVERHEAD;
 625
 626        /*
 627         * The way this works is that at some point in the future
 628         * some task will call _switch to switch to the new task.
 629         * That will pop off the stack frame created below and start
 630         * the new task running at ret_from_fork.  The new task will
 631         * do some house keeping and then return from the fork or clone
 632         * system call, using the stack frame created above.
 633         */
 634        sp -= sizeof(struct pt_regs);
 635        kregs = (struct pt_regs *) sp;
 636        sp -= STACK_FRAME_OVERHEAD;
 637        p->thread.ksp = sp;
 638        p->thread.ksp_limit = (unsigned long)task_stack_page(p) +
 639                                _ALIGN_UP(sizeof(struct thread_info), 16);
 640
 641#ifdef CONFIG_PPC_STD_MMU_64
 642        if (cpu_has_feature(CPU_FTR_SLB)) {
 643                unsigned long sp_vsid;
 644                unsigned long llp = mmu_psize_defs[mmu_linear_psize].sllp;
 645
 646                if (cpu_has_feature(CPU_FTR_1T_SEGMENT))
 647                        sp_vsid = get_kernel_vsid(sp, MMU_SEGSIZE_1T)
 648                                << SLB_VSID_SHIFT_1T;
 649                else
 650                        sp_vsid = get_kernel_vsid(sp, MMU_SEGSIZE_256M)
 651                                << SLB_VSID_SHIFT;
 652                sp_vsid |= SLB_VSID_KERNEL | llp;
 653                p->thread.ksp_vsid = sp_vsid;
 654        }
 655#endif /* CONFIG_PPC_STD_MMU_64 */
 656
 657        /*
 658         * The PPC64 ABI makes use of a TOC to contain function 
 659         * pointers.  The function (ret_from_except) is actually a pointer
 660         * to the TOC entry.  The first entry is a pointer to the actual
 661         * function.
 662         */
 663#ifdef CONFIG_PPC64
 664        kregs->nip = *((unsigned long *)ret_from_fork);
 665#else
 666        kregs->nip = (unsigned long)ret_from_fork;
 667#endif
 668
 669        return 0;
 670}
 671
 672/*
 673 * Set up a thread for executing a new program
 674 */
 675void start_thread(struct pt_regs *regs, unsigned long start, unsigned long sp)
 676{
 677#ifdef CONFIG_PPC64
 678        unsigned long load_addr = regs->gpr[2]; /* saved by ELF_PLAT_INIT */
 679#endif
 680
 681        set_fs(USER_DS);
 682
 683        /*
 684         * If we exec out of a kernel thread then thread.regs will not be
 685         * set.  Do it now.
 686         */
 687        if (!current->thread.regs) {
 688                struct pt_regs *regs = task_stack_page(current) + THREAD_SIZE;
 689                current->thread.regs = regs - 1;
 690        }
 691
 692        memset(regs->gpr, 0, sizeof(regs->gpr));
 693        regs->ctr = 0;
 694        regs->link = 0;
 695        regs->xer = 0;
 696        regs->ccr = 0;
 697        regs->gpr[1] = sp;
 698
 699        /*
 700         * We have just cleared all the nonvolatile GPRs, so make
 701         * FULL_REGS(regs) return true.  This is necessary to allow
 702         * ptrace to examine the thread immediately after exec.
 703         */
 704        regs->trap &= ~1UL;
 705
 706#ifdef CONFIG_PPC32
 707        regs->mq = 0;
 708        regs->nip = start;
 709        regs->msr = MSR_USER;
 710#else
 711        if (!test_thread_flag(TIF_32BIT)) {
 712                unsigned long entry, toc;
 713
 714                /* start is a relocated pointer to the function descriptor for
 715                 * the elf _start routine.  The first entry in the function
 716                 * descriptor is the entry address of _start and the second
 717                 * entry is the TOC value we need to use.
 718                 */
 719                __get_user(entry, (unsigned long __user *)start);
 720                __get_user(toc, (unsigned long __user *)start+1);
 721
 722                /* Check whether the e_entry function descriptor entries
 723                 * need to be relocated before we can use them.
 724                 */
 725                if (load_addr != 0) {
 726                        entry += load_addr;
 727                        toc   += load_addr;
 728                }
 729                regs->nip = entry;
 730                regs->gpr[2] = toc;
 731                regs->msr = MSR_USER64;
 732        } else {
 733                regs->nip = start;
 734                regs->gpr[2] = 0;
 735                regs->msr = MSR_USER32;
 736        }
 737#endif
 738
 739        discard_lazy_cpu_state();
 740#ifdef CONFIG_VSX
 741        current->thread.used_vsr = 0;
 742#endif
 743        memset(current->thread.fpr, 0, sizeof(current->thread.fpr));
 744        current->thread.fpscr.val = 0;
 745#ifdef CONFIG_ALTIVEC
 746        memset(current->thread.vr, 0, sizeof(current->thread.vr));
 747        memset(&current->thread.vscr, 0, sizeof(current->thread.vscr));
 748        current->thread.vscr.u[3] = 0x00010000; /* Java mode disabled */
 749        current->thread.vrsave = 0;
 750        current->thread.used_vr = 0;
 751#endif /* CONFIG_ALTIVEC */
 752#ifdef CONFIG_SPE
 753        memset(current->thread.evr, 0, sizeof(current->thread.evr));
 754        current->thread.acc = 0;
 755        current->thread.spefscr = 0;
 756        current->thread.used_spe = 0;
 757#endif /* CONFIG_SPE */
 758}
 759
 760#define PR_FP_ALL_EXCEPT (PR_FP_EXC_DIV | PR_FP_EXC_OVF | PR_FP_EXC_UND \
 761                | PR_FP_EXC_RES | PR_FP_EXC_INV)
 762
 763int set_fpexc_mode(struct task_struct *tsk, unsigned int val)
 764{
 765        struct pt_regs *regs = tsk->thread.regs;
 766
 767        /* This is a bit hairy.  If we are an SPE enabled  processor
 768         * (have embedded fp) we store the IEEE exception enable flags in
 769         * fpexc_mode.  fpexc_mode is also used for setting FP exception
 770         * mode (asyn, precise, disabled) for 'Classic' FP. */
 771        if (val & PR_FP_EXC_SW_ENABLE) {
 772#ifdef CONFIG_SPE
 773                if (cpu_has_feature(CPU_FTR_SPE)) {
 774                        tsk->thread.fpexc_mode = val &
 775                                (PR_FP_EXC_SW_ENABLE | PR_FP_ALL_EXCEPT);
 776                        return 0;
 777                } else {
 778                        return -EINVAL;
 779                }
 780#else
 781                return -EINVAL;
 782#endif
 783        }
 784
 785        /* on a CONFIG_SPE this does not hurt us.  The bits that
 786         * __pack_fe01 use do not overlap with bits used for
 787         * PR_FP_EXC_SW_ENABLE.  Additionally, the MSR[FE0,FE1] bits
 788         * on CONFIG_SPE implementations are reserved so writing to
 789         * them does not change anything */
 790        if (val > PR_FP_EXC_PRECISE)
 791                return -EINVAL;
 792        tsk->thread.fpexc_mode = __pack_fe01(val);
 793        if (regs != NULL && (regs->msr & MSR_FP) != 0)
 794                regs->msr = (regs->msr & ~(MSR_FE0|MSR_FE1))
 795                        | tsk->thread.fpexc_mode;
 796        return 0;
 797}
 798
 799int get_fpexc_mode(struct task_struct *tsk, unsigned long adr)
 800{
 801        unsigned int val;
 802
 803        if (tsk->thread.fpexc_mode & PR_FP_EXC_SW_ENABLE)
 804#ifdef CONFIG_SPE
 805                if (cpu_has_feature(CPU_FTR_SPE))
 806                        val = tsk->thread.fpexc_mode;
 807                else
 808                        return -EINVAL;
 809#else
 810                return -EINVAL;
 811#endif
 812        else
 813                val = __unpack_fe01(tsk->thread.fpexc_mode);
 814        return put_user(val, (unsigned int __user *) adr);
 815}
 816
 817int set_endian(struct task_struct *tsk, unsigned int val)
 818{
 819        struct pt_regs *regs = tsk->thread.regs;
 820
 821        if ((val == PR_ENDIAN_LITTLE && !cpu_has_feature(CPU_FTR_REAL_LE)) ||
 822            (val == PR_ENDIAN_PPC_LITTLE && !cpu_has_feature(CPU_FTR_PPC_LE)))
 823                return -EINVAL;
 824
 825        if (regs == NULL)
 826                return -EINVAL;
 827
 828        if (val == PR_ENDIAN_BIG)
 829                regs->msr &= ~MSR_LE;
 830        else if (val == PR_ENDIAN_LITTLE || val == PR_ENDIAN_PPC_LITTLE)
 831                regs->msr |= MSR_LE;
 832        else
 833                return -EINVAL;
 834
 835        return 0;
 836}
 837
 838int get_endian(struct task_struct *tsk, unsigned long adr)
 839{
 840        struct pt_regs *regs = tsk->thread.regs;
 841        unsigned int val;
 842
 843        if (!cpu_has_feature(CPU_FTR_PPC_LE) &&
 844            !cpu_has_feature(CPU_FTR_REAL_LE))
 845                return -EINVAL;
 846
 847        if (regs == NULL)
 848                return -EINVAL;
 849
 850        if (regs->msr & MSR_LE) {
 851                if (cpu_has_feature(CPU_FTR_REAL_LE))
 852                        val = PR_ENDIAN_LITTLE;
 853                else
 854                        val = PR_ENDIAN_PPC_LITTLE;
 855        } else
 856                val = PR_ENDIAN_BIG;
 857
 858        return put_user(val, (unsigned int __user *)adr);
 859}
 860
 861int set_unalign_ctl(struct task_struct *tsk, unsigned int val)
 862{
 863        tsk->thread.align_ctl = val;
 864        return 0;
 865}
 866
 867int get_unalign_ctl(struct task_struct *tsk, unsigned long adr)
 868{
 869        return put_user(tsk->thread.align_ctl, (unsigned int __user *)adr);
 870}
 871
 872#define TRUNC_PTR(x)    ((typeof(x))(((unsigned long)(x)) & 0xffffffff))
 873
 874int sys_clone(unsigned long clone_flags, unsigned long usp,
 875              int __user *parent_tidp, void __user *child_threadptr,
 876              int __user *child_tidp, int p6,
 877              struct pt_regs *regs)
 878{
 879        CHECK_FULL_REGS(regs);
 880        if (usp == 0)
 881                usp = regs->gpr[1];     /* stack pointer for child */
 882#ifdef CONFIG_PPC64
 883        if (test_thread_flag(TIF_32BIT)) {
 884                parent_tidp = TRUNC_PTR(parent_tidp);
 885                child_tidp = TRUNC_PTR(child_tidp);
 886        }
 887#endif
 888        return do_fork(clone_flags, usp, regs, 0, parent_tidp, child_tidp);
 889}
 890
 891int sys_fork(unsigned long p1, unsigned long p2, unsigned long p3,
 892             unsigned long p4, unsigned long p5, unsigned long p6,
 893             struct pt_regs *regs)
 894{
 895        CHECK_FULL_REGS(regs);
 896        return do_fork(SIGCHLD, regs->gpr[1], regs, 0, NULL, NULL);
 897}
 898
 899int sys_vfork(unsigned long p1, unsigned long p2, unsigned long p3,
 900              unsigned long p4, unsigned long p5, unsigned long p6,
 901              struct pt_regs *regs)
 902{
 903        CHECK_FULL_REGS(regs);
 904        return do_fork(CLONE_VFORK | CLONE_VM | SIGCHLD, regs->gpr[1],
 905                        regs, 0, NULL, NULL);
 906}
 907
 908int sys_execve(unsigned long a0, unsigned long a1, unsigned long a2,
 909               unsigned long a3, unsigned long a4, unsigned long a5,
 910               struct pt_regs *regs)
 911{
 912        int error;
 913        char *filename;
 914
 915        filename = getname((char __user *) a0);
 916        error = PTR_ERR(filename);
 917        if (IS_ERR(filename))
 918                goto out;
 919        flush_fp_to_thread(current);
 920        flush_altivec_to_thread(current);
 921        flush_spe_to_thread(current);
 922        error = do_execve(filename, (char __user * __user *) a1,
 923                          (char __user * __user *) a2, regs);
 924        putname(filename);
 925out:
 926        return error;
 927}
 928
 929#ifdef CONFIG_IRQSTACKS
 930static inline int valid_irq_stack(unsigned long sp, struct task_struct *p,
 931                                  unsigned long nbytes)
 932{
 933        unsigned long stack_page;
 934        unsigned long cpu = task_cpu(p);
 935
 936        /*
 937         * Avoid crashing if the stack has overflowed and corrupted
 938         * task_cpu(p), which is in the thread_info struct.
 939         */
 940        if (cpu < NR_CPUS && cpu_possible(cpu)) {
 941                stack_page = (unsigned long) hardirq_ctx[cpu];
 942                if (sp >= stack_page + sizeof(struct thread_struct)
 943                    && sp <= stack_page + THREAD_SIZE - nbytes)
 944                        return 1;
 945
 946                stack_page = (unsigned long) softirq_ctx[cpu];
 947                if (sp >= stack_page + sizeof(struct thread_struct)
 948                    && sp <= stack_page + THREAD_SIZE - nbytes)
 949                        return 1;
 950        }
 951        return 0;
 952}
 953
 954#else
 955#define valid_irq_stack(sp, p, nb)      0
 956#endif /* CONFIG_IRQSTACKS */
 957
 958int validate_sp(unsigned long sp, struct task_struct *p,
 959                       unsigned long nbytes)
 960{
 961        unsigned long stack_page = (unsigned long)task_stack_page(p);
 962
 963        if (sp >= stack_page + sizeof(struct thread_struct)
 964            && sp <= stack_page + THREAD_SIZE - nbytes)
 965                return 1;
 966
 967        return valid_irq_stack(sp, p, nbytes);
 968}
 969
 970EXPORT_SYMBOL(validate_sp);
 971
 972unsigned long get_wchan(struct task_struct *p)
 973{
 974        unsigned long ip, sp;
 975        int count = 0;
 976
 977        if (!p || p == current || p->state == TASK_RUNNING)
 978                return 0;
 979
 980        sp = p->thread.ksp;
 981        if (!validate_sp(sp, p, STACK_FRAME_OVERHEAD))
 982                return 0;
 983
 984        do {
 985                sp = *(unsigned long *)sp;
 986                if (!validate_sp(sp, p, STACK_FRAME_OVERHEAD))
 987                        return 0;
 988                if (count > 0) {
 989                        ip = ((unsigned long *)sp)[STACK_FRAME_LR_SAVE];
 990                        if (!in_sched_functions(ip))
 991                                return ip;
 992                }
 993        } while (count++ < 16);
 994        return 0;
 995}
 996
 997static int kstack_depth_to_print = CONFIG_PRINT_STACK_DEPTH;
 998
 999void show_stack(struct task_struct *tsk, unsigned long *stack)
1000{
1001        unsigned long sp, ip, lr, newsp;
1002        int count = 0;
1003        int firstframe = 1;
1004#ifdef CONFIG_FUNCTION_GRAPH_TRACER
1005        int curr_frame = current->curr_ret_stack;
1006        extern void return_to_handler(void);
1007        unsigned long rth = (unsigned long)return_to_handler;
1008        unsigned long mrth = -1;
1009#ifdef CONFIG_PPC64
1010        extern void mod_return_to_handler(void);
1011        rth = *(unsigned long *)rth;
1012        mrth = (unsigned long)mod_return_to_handler;
1013        mrth = *(unsigned long *)mrth;
1014#endif
1015#endif
1016
1017        sp = (unsigned long) stack;
1018        if (tsk == NULL)
1019                tsk = current;
1020        if (sp == 0) {
1021                if (tsk == current)
1022                        asm("mr %0,1" : "=r" (sp));
1023                else
1024                        sp = tsk->thread.ksp;
1025        }
1026
1027        lr = 0;
1028        printk("Call Trace:\n");
1029        do {
1030                if (!validate_sp(sp, tsk, STACK_FRAME_OVERHEAD))
1031                        return;
1032
1033                stack = (unsigned long *) sp;
1034                newsp = stack[0];
1035                ip = stack[STACK_FRAME_LR_SAVE];
1036                if (!firstframe || ip != lr) {
1037                        printk("["REG"] ["REG"] %pS", sp, ip, (void *)ip);
1038#ifdef CONFIG_FUNCTION_GRAPH_TRACER
1039                        if ((ip == rth || ip == mrth) && curr_frame >= 0) {
1040                                printk(" (%pS)",
1041                                       (void *)current->ret_stack[curr_frame].ret);
1042                                curr_frame--;
1043                        }
1044#endif
1045                        if (firstframe)
1046                                printk(" (unreliable)");
1047                        printk("\n");
1048                }
1049                firstframe = 0;
1050
1051                /*
1052                 * See if this is an exception frame.
1053                 * We look for the "regshere" marker in the current frame.
1054                 */
1055                if (validate_sp(sp, tsk, STACK_INT_FRAME_SIZE)
1056                    && stack[STACK_FRAME_MARKER] == STACK_FRAME_REGS_MARKER) {
1057                        struct pt_regs *regs = (struct pt_regs *)
1058                                (sp + STACK_FRAME_OVERHEAD);
1059                        lr = regs->link;
1060                        printk("--- Exception: %lx at %pS\n    LR = %pS\n",
1061                               regs->trap, (void *)regs->nip, (void *)lr);
1062                        firstframe = 1;
1063                }
1064
1065                sp = newsp;
1066        } while (count++ < kstack_depth_to_print);
1067}
1068
1069void dump_stack(void)
1070{
1071        show_stack(current, NULL);
1072}
1073EXPORT_SYMBOL(dump_stack);
1074
1075#ifdef CONFIG_PPC64
1076void ppc64_runlatch_on(void)
1077{
1078        unsigned long ctrl;
1079
1080        if (cpu_has_feature(CPU_FTR_CTRL) && !test_thread_flag(TIF_RUNLATCH)) {
1081                HMT_medium();
1082
1083                ctrl = mfspr(SPRN_CTRLF);
1084                ctrl |= CTRL_RUNLATCH;
1085                mtspr(SPRN_CTRLT, ctrl);
1086
1087                set_thread_flag(TIF_RUNLATCH);
1088        }
1089}
1090
1091void ppc64_runlatch_off(void)
1092{
1093        unsigned long ctrl;
1094
1095        if (cpu_has_feature(CPU_FTR_CTRL) && test_thread_flag(TIF_RUNLATCH)) {
1096                HMT_medium();
1097
1098                clear_thread_flag(TIF_RUNLATCH);
1099
1100                ctrl = mfspr(SPRN_CTRLF);
1101                ctrl &= ~CTRL_RUNLATCH;
1102                mtspr(SPRN_CTRLT, ctrl);
1103        }
1104}
1105#endif
1106
1107#if THREAD_SHIFT < PAGE_SHIFT
1108
1109static struct kmem_cache *thread_info_cache;
1110
1111struct thread_info *alloc_thread_info(struct task_struct *tsk)
1112{
1113        struct thread_info *ti;
1114
1115        ti = kmem_cache_alloc(thread_info_cache, GFP_KERNEL);
1116        if (unlikely(ti == NULL))
1117                return NULL;
1118#ifdef CONFIG_DEBUG_STACK_USAGE
1119        memset(ti, 0, THREAD_SIZE);
1120#endif
1121        return ti;
1122}
1123
1124void free_thread_info(struct thread_info *ti)
1125{
1126        kmem_cache_free(thread_info_cache, ti);
1127}
1128
1129void thread_info_cache_init(void)
1130{
1131        thread_info_cache = kmem_cache_create("thread_info", THREAD_SIZE,
1132                                              THREAD_SIZE, 0, NULL);
1133        BUG_ON(thread_info_cache == NULL);
1134}
1135
1136#endif /* THREAD_SHIFT < PAGE_SHIFT */
1137
1138unsigned long arch_align_stack(unsigned long sp)
1139{
1140        if (!(current->personality & ADDR_NO_RANDOMIZE) && randomize_va_space)
1141                sp -= get_random_int() & ~PAGE_MASK;
1142        return sp & ~0xf;
1143}
1144
1145static inline unsigned long brk_rnd(void)
1146{
1147        unsigned long rnd = 0;
1148
1149        /* 8MB for 32bit, 1GB for 64bit */
1150        if (is_32bit_task())
1151                rnd = (long)(get_random_int() % (1<<(23-PAGE_SHIFT)));
1152        else
1153                rnd = (long)(get_random_int() % (1<<(30-PAGE_SHIFT)));
1154
1155        return rnd << PAGE_SHIFT;
1156}
1157
1158unsigned long arch_randomize_brk(struct mm_struct *mm)
1159{
1160        unsigned long base = mm->brk;
1161        unsigned long ret;
1162
1163#ifdef CONFIG_PPC_STD_MMU_64
1164        /*
1165         * If we are using 1TB segments and we are allowed to randomise
1166         * the heap, we can put it above 1TB so it is backed by a 1TB
1167         * segment. Otherwise the heap will be in the bottom 1TB
1168         * which always uses 256MB segments and this may result in a
1169         * performance penalty.
1170         */
1171        if (!is_32bit_task() && (mmu_highuser_ssize == MMU_SEGSIZE_1T))
1172                base = max_t(unsigned long, mm->brk, 1UL << SID_SHIFT_1T);
1173#endif
1174
1175        ret = PAGE_ALIGN(base + brk_rnd());
1176
1177        if (ret < mm->brk)
1178                return mm->brk;
1179
1180        return ret;
1181}
1182
1183unsigned long randomize_et_dyn(unsigned long base)
1184{
1185        unsigned long ret = PAGE_ALIGN(base + brk_rnd());
1186
1187        if (ret < base)
1188                return base;
1189
1190        return ret;
1191}
1192
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