cachepc-linux

Fork of AMDESE/linux with modifications for CachePC side-channel attack
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signal_64.c (30736B)


      1// SPDX-License-Identifier: GPL-2.0-or-later
      2/*
      3 *  PowerPC version 
      4 *    Copyright (C) 1995-1996 Gary Thomas (gdt@linuxppc.org)
      5 *
      6 *  Derived from "arch/i386/kernel/signal.c"
      7 *    Copyright (C) 1991, 1992 Linus Torvalds
      8 *    1997-11-28  Modified for POSIX.1b signals by Richard Henderson
      9 */
     10
     11#include <linux/sched.h>
     12#include <linux/mm.h>
     13#include <linux/smp.h>
     14#include <linux/kernel.h>
     15#include <linux/signal.h>
     16#include <linux/errno.h>
     17#include <linux/wait.h>
     18#include <linux/unistd.h>
     19#include <linux/stddef.h>
     20#include <linux/elf.h>
     21#include <linux/ptrace.h>
     22#include <linux/ratelimit.h>
     23#include <linux/syscalls.h>
     24#include <linux/pagemap.h>
     25
     26#include <asm/sigcontext.h>
     27#include <asm/ucontext.h>
     28#include <linux/uaccess.h>
     29#include <asm/unistd.h>
     30#include <asm/cacheflush.h>
     31#include <asm/syscalls.h>
     32#include <asm/vdso.h>
     33#include <asm/switch_to.h>
     34#include <asm/tm.h>
     35#include <asm/asm-prototypes.h>
     36
     37#include "signal.h"
     38
     39
     40#define GP_REGS_SIZE	min(sizeof(elf_gregset_t), sizeof(struct pt_regs))
     41#define FP_REGS_SIZE	sizeof(elf_fpregset_t)
     42
     43#define TRAMP_TRACEBACK	4
     44#define TRAMP_SIZE	7
     45
     46/*
     47 * When we have signals to deliver, we set up on the user stack,
     48 * going down from the original stack pointer:
     49 *	1) a rt_sigframe struct which contains the ucontext	
     50 *	2) a gap of __SIGNAL_FRAMESIZE bytes which acts as a dummy caller
     51 *	   frame for the signal handler.
     52 */
     53
     54struct rt_sigframe {
     55	/* sys_rt_sigreturn requires the ucontext be the first field */
     56	struct ucontext uc;
     57#ifdef CONFIG_PPC_TRANSACTIONAL_MEM
     58	struct ucontext uc_transact;
     59#endif
     60	unsigned long _unused[2];
     61	unsigned int tramp[TRAMP_SIZE];
     62	struct siginfo __user *pinfo;
     63	void __user *puc;
     64	struct siginfo info;
     65	/* New 64 bit little-endian ABI allows redzone of 512 bytes below sp */
     66	char abigap[USER_REDZONE_SIZE];
     67} __attribute__ ((aligned (16)));
     68
     69unsigned long get_min_sigframe_size_64(void)
     70{
     71	return sizeof(struct rt_sigframe) + __SIGNAL_FRAMESIZE;
     72}
     73
     74/*
     75 * This computes a quad word aligned pointer inside the vmx_reserve array
     76 * element. For historical reasons sigcontext might not be quad word aligned,
     77 * but the location we write the VMX regs to must be. See the comment in
     78 * sigcontext for more detail.
     79 */
     80#ifdef CONFIG_ALTIVEC
     81static elf_vrreg_t __user *sigcontext_vmx_regs(struct sigcontext __user *sc)
     82{
     83	return (elf_vrreg_t __user *) (((unsigned long)sc->vmx_reserve + 15) & ~0xful);
     84}
     85#endif
     86
     87static void prepare_setup_sigcontext(struct task_struct *tsk)
     88{
     89#ifdef CONFIG_ALTIVEC
     90	/* save altivec registers */
     91	if (tsk->thread.used_vr)
     92		flush_altivec_to_thread(tsk);
     93	if (cpu_has_feature(CPU_FTR_ALTIVEC))
     94		tsk->thread.vrsave = mfspr(SPRN_VRSAVE);
     95#endif /* CONFIG_ALTIVEC */
     96
     97	flush_fp_to_thread(tsk);
     98
     99#ifdef CONFIG_VSX
    100	if (tsk->thread.used_vsr)
    101		flush_vsx_to_thread(tsk);
    102#endif /* CONFIG_VSX */
    103}
    104
    105/*
    106 * Set up the sigcontext for the signal frame.
    107 */
    108
    109#define unsafe_setup_sigcontext(sc, tsk, signr, set, handler, ctx_has_vsx_region, label)\
    110do {											\
    111	if (__unsafe_setup_sigcontext(sc, tsk, signr, set, handler, ctx_has_vsx_region))\
    112		goto label;								\
    113} while (0)
    114static long notrace __unsafe_setup_sigcontext(struct sigcontext __user *sc,
    115					struct task_struct *tsk, int signr, sigset_t *set,
    116					unsigned long handler, int ctx_has_vsx_region)
    117{
    118	/* When CONFIG_ALTIVEC is set, we _always_ setup v_regs even if the
    119	 * process never used altivec yet (MSR_VEC is zero in pt_regs of
    120	 * the context). This is very important because we must ensure we
    121	 * don't lose the VRSAVE content that may have been set prior to
    122	 * the process doing its first vector operation
    123	 * Userland shall check AT_HWCAP to know whether it can rely on the
    124	 * v_regs pointer or not
    125	 */
    126#ifdef CONFIG_ALTIVEC
    127	elf_vrreg_t __user *v_regs = sigcontext_vmx_regs(sc);
    128#endif
    129	struct pt_regs *regs = tsk->thread.regs;
    130	unsigned long msr = regs->msr;
    131	/* Force usr to always see softe as 1 (interrupts enabled) */
    132	unsigned long softe = 0x1;
    133
    134	BUG_ON(tsk != current);
    135
    136#ifdef CONFIG_ALTIVEC
    137	unsafe_put_user(v_regs, &sc->v_regs, efault_out);
    138
    139	/* save altivec registers */
    140	if (tsk->thread.used_vr) {
    141		/* Copy 33 vec registers (vr0..31 and vscr) to the stack */
    142		unsafe_copy_to_user(v_regs, &tsk->thread.vr_state,
    143				    33 * sizeof(vector128), efault_out);
    144		/* set MSR_VEC in the MSR value in the frame to indicate that sc->v_reg)
    145		 * contains valid data.
    146		 */
    147		msr |= MSR_VEC;
    148	}
    149	/* We always copy to/from vrsave, it's 0 if we don't have or don't
    150	 * use altivec.
    151	 */
    152	unsafe_put_user(tsk->thread.vrsave, (u32 __user *)&v_regs[33], efault_out);
    153#else /* CONFIG_ALTIVEC */
    154	unsafe_put_user(0, &sc->v_regs, efault_out);
    155#endif /* CONFIG_ALTIVEC */
    156	/* copy fpr regs and fpscr */
    157	unsafe_copy_fpr_to_user(&sc->fp_regs, tsk, efault_out);
    158
    159	/*
    160	 * Clear the MSR VSX bit to indicate there is no valid state attached
    161	 * to this context, except in the specific case below where we set it.
    162	 */
    163	msr &= ~MSR_VSX;
    164#ifdef CONFIG_VSX
    165	/*
    166	 * Copy VSX low doubleword to local buffer for formatting,
    167	 * then out to userspace.  Update v_regs to point after the
    168	 * VMX data.
    169	 */
    170	if (tsk->thread.used_vsr && ctx_has_vsx_region) {
    171		v_regs += ELF_NVRREG;
    172		unsafe_copy_vsx_to_user(v_regs, tsk, efault_out);
    173		/* set MSR_VSX in the MSR value in the frame to
    174		 * indicate that sc->vs_reg) contains valid data.
    175		 */
    176		msr |= MSR_VSX;
    177	}
    178#endif /* CONFIG_VSX */
    179	unsafe_put_user(&sc->gp_regs, &sc->regs, efault_out);
    180	unsafe_copy_to_user(&sc->gp_regs, regs, GP_REGS_SIZE, efault_out);
    181	unsafe_put_user(msr, &sc->gp_regs[PT_MSR], efault_out);
    182	unsafe_put_user(softe, &sc->gp_regs[PT_SOFTE], efault_out);
    183	unsafe_put_user(signr, &sc->signal, efault_out);
    184	unsafe_put_user(handler, &sc->handler, efault_out);
    185	if (set != NULL)
    186		unsafe_put_user(set->sig[0], &sc->oldmask, efault_out);
    187
    188	return 0;
    189
    190efault_out:
    191	return -EFAULT;
    192}
    193
    194#ifdef CONFIG_PPC_TRANSACTIONAL_MEM
    195/*
    196 * As above, but Transactional Memory is in use, so deliver sigcontexts
    197 * containing checkpointed and transactional register states.
    198 *
    199 * To do this, we treclaim (done before entering here) to gather both sets of
    200 * registers and set up the 'normal' sigcontext registers with rolled-back
    201 * register values such that a simple signal handler sees a correct
    202 * checkpointed register state.  If interested, a TM-aware sighandler can
    203 * examine the transactional registers in the 2nd sigcontext to determine the
    204 * real origin of the signal.
    205 */
    206static long setup_tm_sigcontexts(struct sigcontext __user *sc,
    207				 struct sigcontext __user *tm_sc,
    208				 struct task_struct *tsk,
    209				 int signr, sigset_t *set, unsigned long handler,
    210				 unsigned long msr)
    211{
    212	/* When CONFIG_ALTIVEC is set, we _always_ setup v_regs even if the
    213	 * process never used altivec yet (MSR_VEC is zero in pt_regs of
    214	 * the context). This is very important because we must ensure we
    215	 * don't lose the VRSAVE content that may have been set prior to
    216	 * the process doing its first vector operation
    217	 * Userland shall check AT_HWCAP to know wether it can rely on the
    218	 * v_regs pointer or not.
    219	 */
    220#ifdef CONFIG_ALTIVEC
    221	elf_vrreg_t __user *v_regs = sigcontext_vmx_regs(sc);
    222	elf_vrreg_t __user *tm_v_regs = sigcontext_vmx_regs(tm_sc);
    223#endif
    224	struct pt_regs *regs = tsk->thread.regs;
    225	long err = 0;
    226
    227	BUG_ON(tsk != current);
    228
    229	BUG_ON(!MSR_TM_ACTIVE(msr));
    230
    231	WARN_ON(tm_suspend_disabled);
    232
    233	/* Restore checkpointed FP, VEC, and VSX bits from ckpt_regs as
    234	 * it contains the correct FP, VEC, VSX state after we treclaimed
    235	 * the transaction and giveup_all() was called on reclaiming.
    236	 */
    237	msr |= tsk->thread.ckpt_regs.msr & (MSR_FP | MSR_VEC | MSR_VSX);
    238
    239#ifdef CONFIG_ALTIVEC
    240	err |= __put_user(v_regs, &sc->v_regs);
    241	err |= __put_user(tm_v_regs, &tm_sc->v_regs);
    242
    243	/* save altivec registers */
    244	if (tsk->thread.used_vr) {
    245		/* Copy 33 vec registers (vr0..31 and vscr) to the stack */
    246		err |= __copy_to_user(v_regs, &tsk->thread.ckvr_state,
    247				      33 * sizeof(vector128));
    248		/* If VEC was enabled there are transactional VRs valid too,
    249		 * else they're a copy of the checkpointed VRs.
    250		 */
    251		if (msr & MSR_VEC)
    252			err |= __copy_to_user(tm_v_regs,
    253					      &tsk->thread.vr_state,
    254					      33 * sizeof(vector128));
    255		else
    256			err |= __copy_to_user(tm_v_regs,
    257					      &tsk->thread.ckvr_state,
    258					      33 * sizeof(vector128));
    259
    260		/* set MSR_VEC in the MSR value in the frame to indicate
    261		 * that sc->v_reg contains valid data.
    262		 */
    263		msr |= MSR_VEC;
    264	}
    265	/* We always copy to/from vrsave, it's 0 if we don't have or don't
    266	 * use altivec.
    267	 */
    268	if (cpu_has_feature(CPU_FTR_ALTIVEC))
    269		tsk->thread.ckvrsave = mfspr(SPRN_VRSAVE);
    270	err |= __put_user(tsk->thread.ckvrsave, (u32 __user *)&v_regs[33]);
    271	if (msr & MSR_VEC)
    272		err |= __put_user(tsk->thread.vrsave,
    273				  (u32 __user *)&tm_v_regs[33]);
    274	else
    275		err |= __put_user(tsk->thread.ckvrsave,
    276				  (u32 __user *)&tm_v_regs[33]);
    277
    278#else /* CONFIG_ALTIVEC */
    279	err |= __put_user(0, &sc->v_regs);
    280	err |= __put_user(0, &tm_sc->v_regs);
    281#endif /* CONFIG_ALTIVEC */
    282
    283	/* copy fpr regs and fpscr */
    284	err |= copy_ckfpr_to_user(&sc->fp_regs, tsk);
    285	if (msr & MSR_FP)
    286		err |= copy_fpr_to_user(&tm_sc->fp_regs, tsk);
    287	else
    288		err |= copy_ckfpr_to_user(&tm_sc->fp_regs, tsk);
    289
    290#ifdef CONFIG_VSX
    291	/*
    292	 * Copy VSX low doubleword to local buffer for formatting,
    293	 * then out to userspace.  Update v_regs to point after the
    294	 * VMX data.
    295	 */
    296	if (tsk->thread.used_vsr) {
    297		v_regs += ELF_NVRREG;
    298		tm_v_regs += ELF_NVRREG;
    299
    300		err |= copy_ckvsx_to_user(v_regs, tsk);
    301
    302		if (msr & MSR_VSX)
    303			err |= copy_vsx_to_user(tm_v_regs, tsk);
    304		else
    305			err |= copy_ckvsx_to_user(tm_v_regs, tsk);
    306
    307		/* set MSR_VSX in the MSR value in the frame to
    308		 * indicate that sc->vs_reg) contains valid data.
    309		 */
    310		msr |= MSR_VSX;
    311	}
    312#endif /* CONFIG_VSX */
    313
    314	err |= __put_user(&sc->gp_regs, &sc->regs);
    315	err |= __put_user(&tm_sc->gp_regs, &tm_sc->regs);
    316	err |= __copy_to_user(&tm_sc->gp_regs, regs, GP_REGS_SIZE);
    317	err |= __copy_to_user(&sc->gp_regs,
    318			      &tsk->thread.ckpt_regs, GP_REGS_SIZE);
    319	err |= __put_user(msr, &tm_sc->gp_regs[PT_MSR]);
    320	err |= __put_user(msr, &sc->gp_regs[PT_MSR]);
    321	err |= __put_user(signr, &sc->signal);
    322	err |= __put_user(handler, &sc->handler);
    323	if (set != NULL)
    324		err |=  __put_user(set->sig[0], &sc->oldmask);
    325
    326	return err;
    327}
    328#endif
    329
    330/*
    331 * Restore the sigcontext from the signal frame.
    332 */
    333#define unsafe_restore_sigcontext(tsk, set, sig, sc, label) do {	\
    334	if (__unsafe_restore_sigcontext(tsk, set, sig, sc))		\
    335		goto label;						\
    336} while (0)
    337static long notrace __unsafe_restore_sigcontext(struct task_struct *tsk, sigset_t *set,
    338						int sig, struct sigcontext __user *sc)
    339{
    340#ifdef CONFIG_ALTIVEC
    341	elf_vrreg_t __user *v_regs;
    342#endif
    343	unsigned long save_r13 = 0;
    344	unsigned long msr;
    345	struct pt_regs *regs = tsk->thread.regs;
    346#ifdef CONFIG_VSX
    347	int i;
    348#endif
    349
    350	BUG_ON(tsk != current);
    351
    352	/* If this is not a signal return, we preserve the TLS in r13 */
    353	if (!sig)
    354		save_r13 = regs->gpr[13];
    355
    356	/* copy the GPRs */
    357	unsafe_copy_from_user(regs->gpr, sc->gp_regs, sizeof(regs->gpr), efault_out);
    358	unsafe_get_user(regs->nip, &sc->gp_regs[PT_NIP], efault_out);
    359	/* get MSR separately, transfer the LE bit if doing signal return */
    360	unsafe_get_user(msr, &sc->gp_regs[PT_MSR], efault_out);
    361	if (sig)
    362		regs_set_return_msr(regs, (regs->msr & ~MSR_LE) | (msr & MSR_LE));
    363	unsafe_get_user(regs->orig_gpr3, &sc->gp_regs[PT_ORIG_R3], efault_out);
    364	unsafe_get_user(regs->ctr, &sc->gp_regs[PT_CTR], efault_out);
    365	unsafe_get_user(regs->link, &sc->gp_regs[PT_LNK], efault_out);
    366	unsafe_get_user(regs->xer, &sc->gp_regs[PT_XER], efault_out);
    367	unsafe_get_user(regs->ccr, &sc->gp_regs[PT_CCR], efault_out);
    368	/* Don't allow userspace to set SOFTE */
    369	set_trap_norestart(regs);
    370	unsafe_get_user(regs->dar, &sc->gp_regs[PT_DAR], efault_out);
    371	unsafe_get_user(regs->dsisr, &sc->gp_regs[PT_DSISR], efault_out);
    372	unsafe_get_user(regs->result, &sc->gp_regs[PT_RESULT], efault_out);
    373
    374	if (!sig)
    375		regs->gpr[13] = save_r13;
    376	if (set != NULL)
    377		unsafe_get_user(set->sig[0], &sc->oldmask, efault_out);
    378
    379	/*
    380	 * Force reload of FP/VEC.
    381	 * This has to be done before copying stuff into tsk->thread.fpr/vr
    382	 * for the reasons explained in the previous comment.
    383	 */
    384	regs_set_return_msr(regs, regs->msr & ~(MSR_FP | MSR_FE0 | MSR_FE1 | MSR_VEC | MSR_VSX));
    385
    386#ifdef CONFIG_ALTIVEC
    387	unsafe_get_user(v_regs, &sc->v_regs, efault_out);
    388	if (v_regs && !access_ok(v_regs, 34 * sizeof(vector128)))
    389		return -EFAULT;
    390	/* Copy 33 vec registers (vr0..31 and vscr) from the stack */
    391	if (v_regs != NULL && (msr & MSR_VEC) != 0) {
    392		unsafe_copy_from_user(&tsk->thread.vr_state, v_regs,
    393				      33 * sizeof(vector128), efault_out);
    394		tsk->thread.used_vr = true;
    395	} else if (tsk->thread.used_vr) {
    396		memset(&tsk->thread.vr_state, 0, 33 * sizeof(vector128));
    397	}
    398	/* Always get VRSAVE back */
    399	if (v_regs != NULL)
    400		unsafe_get_user(tsk->thread.vrsave, (u32 __user *)&v_regs[33], efault_out);
    401	else
    402		tsk->thread.vrsave = 0;
    403	if (cpu_has_feature(CPU_FTR_ALTIVEC))
    404		mtspr(SPRN_VRSAVE, tsk->thread.vrsave);
    405#endif /* CONFIG_ALTIVEC */
    406	/* restore floating point */
    407	unsafe_copy_fpr_from_user(tsk, &sc->fp_regs, efault_out);
    408#ifdef CONFIG_VSX
    409	/*
    410	 * Get additional VSX data. Update v_regs to point after the
    411	 * VMX data.  Copy VSX low doubleword from userspace to local
    412	 * buffer for formatting, then into the taskstruct.
    413	 */
    414	v_regs += ELF_NVRREG;
    415	if ((msr & MSR_VSX) != 0) {
    416		unsafe_copy_vsx_from_user(tsk, v_regs, efault_out);
    417		tsk->thread.used_vsr = true;
    418	} else {
    419		for (i = 0; i < 32 ; i++)
    420			tsk->thread.fp_state.fpr[i][TS_VSRLOWOFFSET] = 0;
    421	}
    422#endif
    423	return 0;
    424
    425efault_out:
    426	return -EFAULT;
    427}
    428
    429#ifdef CONFIG_PPC_TRANSACTIONAL_MEM
    430/*
    431 * Restore the two sigcontexts from the frame of a transactional processes.
    432 */
    433
    434static long restore_tm_sigcontexts(struct task_struct *tsk,
    435				   struct sigcontext __user *sc,
    436				   struct sigcontext __user *tm_sc)
    437{
    438#ifdef CONFIG_ALTIVEC
    439	elf_vrreg_t __user *v_regs, *tm_v_regs;
    440#endif
    441	unsigned long err = 0;
    442	unsigned long msr;
    443	struct pt_regs *regs = tsk->thread.regs;
    444#ifdef CONFIG_VSX
    445	int i;
    446#endif
    447
    448	BUG_ON(tsk != current);
    449
    450	if (tm_suspend_disabled)
    451		return -EINVAL;
    452
    453	/* copy the GPRs */
    454	err |= __copy_from_user(regs->gpr, tm_sc->gp_regs, sizeof(regs->gpr));
    455	err |= __copy_from_user(&tsk->thread.ckpt_regs, sc->gp_regs,
    456				sizeof(regs->gpr));
    457
    458	/*
    459	 * TFHAR is restored from the checkpointed 'wound-back' ucontext's NIP.
    460	 * TEXASR was set by the signal delivery reclaim, as was TFIAR.
    461	 * Users doing anything abhorrent like thread-switching w/ signals for
    462	 * TM-Suspended code will have to back TEXASR/TFIAR up themselves.
    463	 * For the case of getting a signal and simply returning from it,
    464	 * we don't need to re-copy them here.
    465	 */
    466	err |= __get_user(regs->nip, &tm_sc->gp_regs[PT_NIP]);
    467	err |= __get_user(tsk->thread.tm_tfhar, &sc->gp_regs[PT_NIP]);
    468
    469	/* get MSR separately, transfer the LE bit if doing signal return */
    470	err |= __get_user(msr, &sc->gp_regs[PT_MSR]);
    471	/* Don't allow reserved mode. */
    472	if (MSR_TM_RESV(msr))
    473		return -EINVAL;
    474
    475	/* pull in MSR LE from user context */
    476	regs_set_return_msr(regs, (regs->msr & ~MSR_LE) | (msr & MSR_LE));
    477
    478	/* The following non-GPR non-FPR non-VR state is also checkpointed: */
    479	err |= __get_user(regs->ctr, &tm_sc->gp_regs[PT_CTR]);
    480	err |= __get_user(regs->link, &tm_sc->gp_regs[PT_LNK]);
    481	err |= __get_user(regs->xer, &tm_sc->gp_regs[PT_XER]);
    482	err |= __get_user(regs->ccr, &tm_sc->gp_regs[PT_CCR]);
    483	err |= __get_user(tsk->thread.ckpt_regs.ctr,
    484			  &sc->gp_regs[PT_CTR]);
    485	err |= __get_user(tsk->thread.ckpt_regs.link,
    486			  &sc->gp_regs[PT_LNK]);
    487	err |= __get_user(tsk->thread.ckpt_regs.xer,
    488			  &sc->gp_regs[PT_XER]);
    489	err |= __get_user(tsk->thread.ckpt_regs.ccr,
    490			  &sc->gp_regs[PT_CCR]);
    491	/* Don't allow userspace to set SOFTE */
    492	set_trap_norestart(regs);
    493	/* These regs are not checkpointed; they can go in 'regs'. */
    494	err |= __get_user(regs->dar, &sc->gp_regs[PT_DAR]);
    495	err |= __get_user(regs->dsisr, &sc->gp_regs[PT_DSISR]);
    496	err |= __get_user(regs->result, &sc->gp_regs[PT_RESULT]);
    497
    498	/*
    499	 * Force reload of FP/VEC.
    500	 * This has to be done before copying stuff into tsk->thread.fpr/vr
    501	 * for the reasons explained in the previous comment.
    502	 */
    503	regs_set_return_msr(regs, regs->msr & ~(MSR_FP | MSR_FE0 | MSR_FE1 | MSR_VEC | MSR_VSX));
    504
    505#ifdef CONFIG_ALTIVEC
    506	err |= __get_user(v_regs, &sc->v_regs);
    507	err |= __get_user(tm_v_regs, &tm_sc->v_regs);
    508	if (err)
    509		return err;
    510	if (v_regs && !access_ok(v_regs, 34 * sizeof(vector128)))
    511		return -EFAULT;
    512	if (tm_v_regs && !access_ok(tm_v_regs, 34 * sizeof(vector128)))
    513		return -EFAULT;
    514	/* Copy 33 vec registers (vr0..31 and vscr) from the stack */
    515	if (v_regs != NULL && tm_v_regs != NULL && (msr & MSR_VEC) != 0) {
    516		err |= __copy_from_user(&tsk->thread.ckvr_state, v_regs,
    517					33 * sizeof(vector128));
    518		err |= __copy_from_user(&tsk->thread.vr_state, tm_v_regs,
    519					33 * sizeof(vector128));
    520		current->thread.used_vr = true;
    521	}
    522	else if (tsk->thread.used_vr) {
    523		memset(&tsk->thread.vr_state, 0, 33 * sizeof(vector128));
    524		memset(&tsk->thread.ckvr_state, 0, 33 * sizeof(vector128));
    525	}
    526	/* Always get VRSAVE back */
    527	if (v_regs != NULL && tm_v_regs != NULL) {
    528		err |= __get_user(tsk->thread.ckvrsave,
    529				  (u32 __user *)&v_regs[33]);
    530		err |= __get_user(tsk->thread.vrsave,
    531				  (u32 __user *)&tm_v_regs[33]);
    532	}
    533	else {
    534		tsk->thread.vrsave = 0;
    535		tsk->thread.ckvrsave = 0;
    536	}
    537	if (cpu_has_feature(CPU_FTR_ALTIVEC))
    538		mtspr(SPRN_VRSAVE, tsk->thread.vrsave);
    539#endif /* CONFIG_ALTIVEC */
    540	/* restore floating point */
    541	err |= copy_fpr_from_user(tsk, &tm_sc->fp_regs);
    542	err |= copy_ckfpr_from_user(tsk, &sc->fp_regs);
    543#ifdef CONFIG_VSX
    544	/*
    545	 * Get additional VSX data. Update v_regs to point after the
    546	 * VMX data.  Copy VSX low doubleword from userspace to local
    547	 * buffer for formatting, then into the taskstruct.
    548	 */
    549	if (v_regs && ((msr & MSR_VSX) != 0)) {
    550		v_regs += ELF_NVRREG;
    551		tm_v_regs += ELF_NVRREG;
    552		err |= copy_vsx_from_user(tsk, tm_v_regs);
    553		err |= copy_ckvsx_from_user(tsk, v_regs);
    554		tsk->thread.used_vsr = true;
    555	} else {
    556		for (i = 0; i < 32 ; i++) {
    557			tsk->thread.fp_state.fpr[i][TS_VSRLOWOFFSET] = 0;
    558			tsk->thread.ckfp_state.fpr[i][TS_VSRLOWOFFSET] = 0;
    559		}
    560	}
    561#endif
    562	tm_enable();
    563	/* Make sure the transaction is marked as failed */
    564	tsk->thread.tm_texasr |= TEXASR_FS;
    565
    566	/*
    567	 * Disabling preemption, since it is unsafe to be preempted
    568	 * with MSR[TS] set without recheckpointing.
    569	 */
    570	preempt_disable();
    571
    572	/* pull in MSR TS bits from user context */
    573	regs_set_return_msr(regs, regs->msr | (msr & MSR_TS_MASK));
    574
    575	/*
    576	 * Ensure that TM is enabled in regs->msr before we leave the signal
    577	 * handler. It could be the case that (a) user disabled the TM bit
    578	 * through the manipulation of the MSR bits in uc_mcontext or (b) the
    579	 * TM bit was disabled because a sufficient number of context switches
    580	 * happened whilst in the signal handler and load_tm overflowed,
    581	 * disabling the TM bit. In either case we can end up with an illegal
    582	 * TM state leading to a TM Bad Thing when we return to userspace.
    583	 *
    584	 * CAUTION:
    585	 * After regs->MSR[TS] being updated, make sure that get_user(),
    586	 * put_user() or similar functions are *not* called. These
    587	 * functions can generate page faults which will cause the process
    588	 * to be de-scheduled with MSR[TS] set but without calling
    589	 * tm_recheckpoint(). This can cause a bug.
    590	 */
    591	regs_set_return_msr(regs, regs->msr | MSR_TM);
    592
    593	/* This loads the checkpointed FP/VEC state, if used */
    594	tm_recheckpoint(&tsk->thread);
    595
    596	msr_check_and_set(msr & (MSR_FP | MSR_VEC));
    597	if (msr & MSR_FP) {
    598		load_fp_state(&tsk->thread.fp_state);
    599		regs_set_return_msr(regs, regs->msr | (MSR_FP | tsk->thread.fpexc_mode));
    600	}
    601	if (msr & MSR_VEC) {
    602		load_vr_state(&tsk->thread.vr_state);
    603		regs_set_return_msr(regs, regs->msr | MSR_VEC);
    604	}
    605
    606	preempt_enable();
    607
    608	return err;
    609}
    610#else /* !CONFIG_PPC_TRANSACTIONAL_MEM */
    611static long restore_tm_sigcontexts(struct task_struct *tsk, struct sigcontext __user *sc,
    612				   struct sigcontext __user *tm_sc)
    613{
    614	return -EINVAL;
    615}
    616#endif
    617
    618/*
    619 * Setup the trampoline code on the stack
    620 */
    621static long setup_trampoline(unsigned int syscall, unsigned int __user *tramp)
    622{
    623	int i;
    624	long err = 0;
    625
    626	/* Call the handler and pop the dummy stackframe*/
    627	err |= __put_user(PPC_RAW_BCTRL(), &tramp[0]);
    628	err |= __put_user(PPC_RAW_ADDI(_R1, _R1, __SIGNAL_FRAMESIZE), &tramp[1]);
    629
    630	err |= __put_user(PPC_RAW_LI(_R0, syscall), &tramp[2]);
    631	err |= __put_user(PPC_RAW_SC(), &tramp[3]);
    632
    633	/* Minimal traceback info */
    634	for (i=TRAMP_TRACEBACK; i < TRAMP_SIZE ;i++)
    635		err |= __put_user(0, &tramp[i]);
    636
    637	if (!err)
    638		flush_icache_range((unsigned long) &tramp[0],
    639			   (unsigned long) &tramp[TRAMP_SIZE]);
    640
    641	return err;
    642}
    643
    644/*
    645 * Userspace code may pass a ucontext which doesn't include VSX added
    646 * at the end.  We need to check for this case.
    647 */
    648#define UCONTEXTSIZEWITHOUTVSX \
    649		(sizeof(struct ucontext) - 32*sizeof(long))
    650
    651/*
    652 * Handle {get,set,swap}_context operations
    653 */
    654SYSCALL_DEFINE3(swapcontext, struct ucontext __user *, old_ctx,
    655		struct ucontext __user *, new_ctx, long, ctx_size)
    656{
    657	sigset_t set;
    658	unsigned long new_msr = 0;
    659	int ctx_has_vsx_region = 0;
    660
    661	if (new_ctx &&
    662	    get_user(new_msr, &new_ctx->uc_mcontext.gp_regs[PT_MSR]))
    663		return -EFAULT;
    664	/*
    665	 * Check that the context is not smaller than the original
    666	 * size (with VMX but without VSX)
    667	 */
    668	if (ctx_size < UCONTEXTSIZEWITHOUTVSX)
    669		return -EINVAL;
    670	/*
    671	 * If the new context state sets the MSR VSX bits but
    672	 * it doesn't provide VSX state.
    673	 */
    674	if ((ctx_size < sizeof(struct ucontext)) &&
    675	    (new_msr & MSR_VSX))
    676		return -EINVAL;
    677	/* Does the context have enough room to store VSX data? */
    678	if (ctx_size >= sizeof(struct ucontext))
    679		ctx_has_vsx_region = 1;
    680
    681	if (old_ctx != NULL) {
    682		prepare_setup_sigcontext(current);
    683		if (!user_write_access_begin(old_ctx, ctx_size))
    684			return -EFAULT;
    685
    686		unsafe_setup_sigcontext(&old_ctx->uc_mcontext, current, 0, NULL,
    687					0, ctx_has_vsx_region, efault_out);
    688		unsafe_copy_to_user(&old_ctx->uc_sigmask, &current->blocked,
    689				    sizeof(sigset_t), efault_out);
    690
    691		user_write_access_end();
    692	}
    693	if (new_ctx == NULL)
    694		return 0;
    695	if (!access_ok(new_ctx, ctx_size) ||
    696	    fault_in_readable((char __user *)new_ctx, ctx_size))
    697		return -EFAULT;
    698
    699	/*
    700	 * If we get a fault copying the context into the kernel's
    701	 * image of the user's registers, we can't just return -EFAULT
    702	 * because the user's registers will be corrupted.  For instance
    703	 * the NIP value may have been updated but not some of the
    704	 * other registers.  Given that we have done the access_ok
    705	 * and successfully read the first and last bytes of the region
    706	 * above, this should only happen in an out-of-memory situation
    707	 * or if another thread unmaps the region containing the context.
    708	 * We kill the task with a SIGSEGV in this situation.
    709	 */
    710
    711	if (__get_user_sigset(&set, &new_ctx->uc_sigmask)) {
    712		force_exit_sig(SIGSEGV);
    713		return -EFAULT;
    714	}
    715	set_current_blocked(&set);
    716
    717	if (!user_read_access_begin(new_ctx, ctx_size))
    718		return -EFAULT;
    719	if (__unsafe_restore_sigcontext(current, NULL, 0, &new_ctx->uc_mcontext)) {
    720		user_read_access_end();
    721		force_exit_sig(SIGSEGV);
    722		return -EFAULT;
    723	}
    724	user_read_access_end();
    725
    726	/* This returns like rt_sigreturn */
    727	set_thread_flag(TIF_RESTOREALL);
    728
    729	return 0;
    730
    731efault_out:
    732	user_write_access_end();
    733	return -EFAULT;
    734}
    735
    736
    737/*
    738 * Do a signal return; undo the signal stack.
    739 */
    740
    741SYSCALL_DEFINE0(rt_sigreturn)
    742{
    743	struct pt_regs *regs = current_pt_regs();
    744	struct ucontext __user *uc = (struct ucontext __user *)regs->gpr[1];
    745	sigset_t set;
    746	unsigned long msr;
    747
    748	/* Always make any pending restarted system calls return -EINTR */
    749	current->restart_block.fn = do_no_restart_syscall;
    750
    751	if (!access_ok(uc, sizeof(*uc)))
    752		goto badframe;
    753
    754	if (__get_user_sigset(&set, &uc->uc_sigmask))
    755		goto badframe;
    756	set_current_blocked(&set);
    757
    758	if (IS_ENABLED(CONFIG_PPC_TRANSACTIONAL_MEM)) {
    759		/*
    760		 * If there is a transactional state then throw it away.
    761		 * The purpose of a sigreturn is to destroy all traces of the
    762		 * signal frame, this includes any transactional state created
    763		 * within in. We only check for suspended as we can never be
    764		 * active in the kernel, we are active, there is nothing better to
    765		 * do than go ahead and Bad Thing later.
    766		 * The cause is not important as there will never be a
    767		 * recheckpoint so it's not user visible.
    768		 */
    769		if (MSR_TM_SUSPENDED(mfmsr()))
    770			tm_reclaim_current(0);
    771
    772		/*
    773		 * Disable MSR[TS] bit also, so, if there is an exception in the
    774		 * code below (as a page fault in copy_ckvsx_to_user()), it does
    775		 * not recheckpoint this task if there was a context switch inside
    776		 * the exception.
    777		 *
    778		 * A major page fault can indirectly call schedule(). A reschedule
    779		 * process in the middle of an exception can have a side effect
    780		 * (Changing the CPU MSR[TS] state), since schedule() is called
    781		 * with the CPU MSR[TS] disable and returns with MSR[TS]=Suspended
    782		 * (switch_to() calls tm_recheckpoint() for the 'new' process). In
    783		 * this case, the process continues to be the same in the CPU, but
    784		 * the CPU state just changed.
    785		 *
    786		 * This can cause a TM Bad Thing, since the MSR in the stack will
    787		 * have the MSR[TS]=0, and this is what will be used to RFID.
    788		 *
    789		 * Clearing MSR[TS] state here will avoid a recheckpoint if there
    790		 * is any process reschedule in kernel space. The MSR[TS] state
    791		 * does not need to be saved also, since it will be replaced with
    792		 * the MSR[TS] that came from user context later, at
    793		 * restore_tm_sigcontexts.
    794		 */
    795		regs_set_return_msr(regs, regs->msr & ~MSR_TS_MASK);
    796
    797		if (__get_user(msr, &uc->uc_mcontext.gp_regs[PT_MSR]))
    798			goto badframe;
    799	}
    800
    801	if (IS_ENABLED(CONFIG_PPC_TRANSACTIONAL_MEM) && MSR_TM_ACTIVE(msr)) {
    802		/* We recheckpoint on return. */
    803		struct ucontext __user *uc_transact;
    804
    805		/* Trying to start TM on non TM system */
    806		if (!cpu_has_feature(CPU_FTR_TM))
    807			goto badframe;
    808
    809		if (__get_user(uc_transact, &uc->uc_link))
    810			goto badframe;
    811		if (restore_tm_sigcontexts(current, &uc->uc_mcontext,
    812					   &uc_transact->uc_mcontext))
    813			goto badframe;
    814	} else {
    815		/*
    816		 * Fall through, for non-TM restore
    817		 *
    818		 * Unset MSR[TS] on the thread regs since MSR from user
    819		 * context does not have MSR active, and recheckpoint was
    820		 * not called since restore_tm_sigcontexts() was not called
    821		 * also.
    822		 *
    823		 * If not unsetting it, the code can RFID to userspace with
    824		 * MSR[TS] set, but without CPU in the proper state,
    825		 * causing a TM bad thing.
    826		 */
    827		regs_set_return_msr(current->thread.regs,
    828				current->thread.regs->msr & ~MSR_TS_MASK);
    829		if (!user_read_access_begin(&uc->uc_mcontext, sizeof(uc->uc_mcontext)))
    830			goto badframe;
    831
    832		unsafe_restore_sigcontext(current, NULL, 1, &uc->uc_mcontext,
    833					  badframe_block);
    834
    835		user_read_access_end();
    836	}
    837
    838	if (restore_altstack(&uc->uc_stack))
    839		goto badframe;
    840
    841	set_thread_flag(TIF_RESTOREALL);
    842
    843	return 0;
    844
    845badframe_block:
    846	user_read_access_end();
    847badframe:
    848	signal_fault(current, regs, "rt_sigreturn", uc);
    849
    850	force_sig(SIGSEGV);
    851	return 0;
    852}
    853
    854int handle_rt_signal64(struct ksignal *ksig, sigset_t *set,
    855		struct task_struct *tsk)
    856{
    857	struct rt_sigframe __user *frame;
    858	unsigned long newsp = 0;
    859	long err = 0;
    860	struct pt_regs *regs = tsk->thread.regs;
    861	/* Save the thread's msr before get_tm_stackpointer() changes it */
    862	unsigned long msr = regs->msr;
    863
    864	frame = get_sigframe(ksig, tsk, sizeof(*frame), 0);
    865
    866	/*
    867	 * This only applies when calling unsafe_setup_sigcontext() and must be
    868	 * called before opening the uaccess window.
    869	 */
    870	if (!MSR_TM_ACTIVE(msr))
    871		prepare_setup_sigcontext(tsk);
    872
    873	if (!user_write_access_begin(frame, sizeof(*frame)))
    874		goto badframe;
    875
    876	unsafe_put_user(&frame->info, &frame->pinfo, badframe_block);
    877	unsafe_put_user(&frame->uc, &frame->puc, badframe_block);
    878
    879	/* Create the ucontext.  */
    880	unsafe_put_user(0, &frame->uc.uc_flags, badframe_block);
    881	unsafe_save_altstack(&frame->uc.uc_stack, regs->gpr[1], badframe_block);
    882
    883	if (MSR_TM_ACTIVE(msr)) {
    884#ifdef CONFIG_PPC_TRANSACTIONAL_MEM
    885		/* The ucontext_t passed to userland points to the second
    886		 * ucontext_t (for transactional state) with its uc_link ptr.
    887		 */
    888		unsafe_put_user(&frame->uc_transact, &frame->uc.uc_link, badframe_block);
    889
    890		user_write_access_end();
    891
    892		err |= setup_tm_sigcontexts(&frame->uc.uc_mcontext,
    893					    &frame->uc_transact.uc_mcontext,
    894					    tsk, ksig->sig, NULL,
    895					    (unsigned long)ksig->ka.sa.sa_handler,
    896					    msr);
    897
    898		if (!user_write_access_begin(&frame->uc.uc_sigmask,
    899					     sizeof(frame->uc.uc_sigmask)))
    900			goto badframe;
    901
    902#endif
    903	} else {
    904		unsafe_put_user(0, &frame->uc.uc_link, badframe_block);
    905		unsafe_setup_sigcontext(&frame->uc.uc_mcontext, tsk, ksig->sig,
    906					NULL, (unsigned long)ksig->ka.sa.sa_handler,
    907					1, badframe_block);
    908	}
    909
    910	unsafe_copy_to_user(&frame->uc.uc_sigmask, set, sizeof(*set), badframe_block);
    911	user_write_access_end();
    912
    913	/* Save the siginfo outside of the unsafe block. */
    914	if (copy_siginfo_to_user(&frame->info, &ksig->info))
    915		goto badframe;
    916
    917	/* Make sure signal handler doesn't get spurious FP exceptions */
    918	tsk->thread.fp_state.fpscr = 0;
    919
    920	/* Set up to return from userspace. */
    921	if (tsk->mm->context.vdso) {
    922		regs_set_return_ip(regs, VDSO64_SYMBOL(tsk->mm->context.vdso, sigtramp_rt64));
    923	} else {
    924		err |= setup_trampoline(__NR_rt_sigreturn, &frame->tramp[0]);
    925		if (err)
    926			goto badframe;
    927		regs_set_return_ip(regs, (unsigned long) &frame->tramp[0]);
    928	}
    929
    930	/* Allocate a dummy caller frame for the signal handler. */
    931	newsp = ((unsigned long)frame) - __SIGNAL_FRAMESIZE;
    932	err |= put_user(regs->gpr[1], (unsigned long __user *)newsp);
    933
    934	/* Set up "regs" so we "return" to the signal handler. */
    935	if (is_elf2_task()) {
    936		regs->ctr = (unsigned long) ksig->ka.sa.sa_handler;
    937		regs->gpr[12] = regs->ctr;
    938	} else {
    939		/* Handler is *really* a pointer to the function descriptor for
    940		 * the signal routine.  The first entry in the function
    941		 * descriptor is the entry address of signal and the second
    942		 * entry is the TOC value we need to use.
    943		 */
    944		struct func_desc __user *ptr =
    945			(struct func_desc __user *)ksig->ka.sa.sa_handler;
    946
    947		err |= get_user(regs->ctr, &ptr->addr);
    948		err |= get_user(regs->gpr[2], &ptr->toc);
    949	}
    950
    951	/* enter the signal handler in native-endian mode */
    952	regs_set_return_msr(regs, (regs->msr & ~MSR_LE) | (MSR_KERNEL & MSR_LE));
    953	regs->gpr[1] = newsp;
    954	regs->gpr[3] = ksig->sig;
    955	regs->result = 0;
    956	if (ksig->ka.sa.sa_flags & SA_SIGINFO) {
    957		regs->gpr[4] = (unsigned long)&frame->info;
    958		regs->gpr[5] = (unsigned long)&frame->uc;
    959		regs->gpr[6] = (unsigned long) frame;
    960	} else {
    961		regs->gpr[4] = (unsigned long)&frame->uc.uc_mcontext;
    962	}
    963	if (err)
    964		goto badframe;
    965
    966	return 0;
    967
    968badframe_block:
    969	user_write_access_end();
    970badframe:
    971	signal_fault(current, regs, "handle_rt_signal64", frame);
    972
    973	return 1;
    974}