Restartable sequences: x86 32/64 architecture support
[deliverable/linux.git] / arch / x86 / entry / common.c
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1/*
2 * common.c - C code for kernel entry and exit
3 * Copyright (c) 2015 Andrew Lutomirski
4 * GPL v2
5 *
6 * Based on asm and ptrace code by many authors. The code here originated
7 * in ptrace.c and signal.c.
8 */
9
10#include <linux/kernel.h>
11#include <linux/sched.h>
12#include <linux/mm.h>
13#include <linux/smp.h>
14#include <linux/errno.h>
15#include <linux/ptrace.h>
16#include <linux/tracehook.h>
17#include <linux/audit.h>
18#include <linux/seccomp.h>
19#include <linux/signal.h>
20#include <linux/export.h>
21#include <linux/context_tracking.h>
22#include <linux/user-return-notifier.h>
23#include <linux/uprobes.h>
24
25#include <asm/desc.h>
26#include <asm/traps.h>
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27#include <asm/vdso.h>
28#include <asm/uaccess.h>
cd4d09ec 29#include <asm/cpufeature.h>
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30
31#define CREATE_TRACE_POINTS
32#include <trace/events/syscalls.h>
33
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34static struct thread_info *pt_regs_to_thread_info(struct pt_regs *regs)
35{
36 unsigned long top_of_stack =
37 (unsigned long)(regs + 1) + TOP_OF_KERNEL_STACK_PADDING;
38 return (struct thread_info *)(top_of_stack - THREAD_SIZE);
39}
40
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41#ifdef CONFIG_CONTEXT_TRACKING
42/* Called on entry from user mode with IRQs off. */
43__visible void enter_from_user_mode(void)
44{
45 CT_WARN_ON(ct_state() != CONTEXT_USER);
46 user_exit();
47}
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48#else
49static inline void enter_from_user_mode(void) {}
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50#endif
51
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52static void do_audit_syscall_entry(struct pt_regs *regs, u32 arch)
53{
54#ifdef CONFIG_X86_64
55 if (arch == AUDIT_ARCH_X86_64) {
56 audit_syscall_entry(regs->orig_ax, regs->di,
57 regs->si, regs->dx, regs->r10);
58 } else
59#endif
60 {
61 audit_syscall_entry(regs->orig_ax, regs->bx,
62 regs->cx, regs->dx, regs->si);
63 }
64}
65
66/*
67 * We can return 0 to resume the syscall or anything else to go to phase
68 * 2. If we resume the syscall, we need to put something appropriate in
69 * regs->orig_ax.
70 *
71 * NB: We don't have full pt_regs here, but regs->orig_ax and regs->ax
72 * are fully functional.
73 *
74 * For phase 2's benefit, our return value is:
75 * 0: resume the syscall
76 * 1: go to phase 2; no seccomp phase 2 needed
77 * anything else: go to phase 2; pass return value to seccomp
78 */
79unsigned long syscall_trace_enter_phase1(struct pt_regs *regs, u32 arch)
80{
dd636071 81 struct thread_info *ti = pt_regs_to_thread_info(regs);
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82 unsigned long ret = 0;
83 u32 work;
84
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85 if (IS_ENABLED(CONFIG_DEBUG_ENTRY))
86 BUG_ON(regs != task_pt_regs(current));
1f484aa6 87
dd636071 88 work = ACCESS_ONCE(ti->flags) & _TIF_WORK_SYSCALL_ENTRY;
1f484aa6 89
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90#ifdef CONFIG_SECCOMP
91 /*
92 * Do seccomp first -- it should minimize exposure of other
93 * code, and keeping seccomp fast is probably more valuable
94 * than the rest of this.
95 */
96 if (work & _TIF_SECCOMP) {
97 struct seccomp_data sd;
98
99 sd.arch = arch;
100 sd.nr = regs->orig_ax;
101 sd.instruction_pointer = regs->ip;
102#ifdef CONFIG_X86_64
103 if (arch == AUDIT_ARCH_X86_64) {
104 sd.args[0] = regs->di;
105 sd.args[1] = regs->si;
106 sd.args[2] = regs->dx;
107 sd.args[3] = regs->r10;
108 sd.args[4] = regs->r8;
109 sd.args[5] = regs->r9;
110 } else
111#endif
112 {
113 sd.args[0] = regs->bx;
114 sd.args[1] = regs->cx;
115 sd.args[2] = regs->dx;
116 sd.args[3] = regs->si;
117 sd.args[4] = regs->di;
118 sd.args[5] = regs->bp;
119 }
120
121 BUILD_BUG_ON(SECCOMP_PHASE1_OK != 0);
122 BUILD_BUG_ON(SECCOMP_PHASE1_SKIP != 1);
123
124 ret = seccomp_phase1(&sd);
125 if (ret == SECCOMP_PHASE1_SKIP) {
126 regs->orig_ax = -1;
127 ret = 0;
128 } else if (ret != SECCOMP_PHASE1_OK) {
129 return ret; /* Go directly to phase 2 */
130 }
131
132 work &= ~_TIF_SECCOMP;
133 }
134#endif
135
136 /* Do our best to finish without phase 2. */
137 if (work == 0)
138 return ret; /* seccomp and/or nohz only (ret == 0 here) */
139
140#ifdef CONFIG_AUDITSYSCALL
141 if (work == _TIF_SYSCALL_AUDIT) {
142 /*
143 * If there is no more work to be done except auditing,
144 * then audit in phase 1. Phase 2 always audits, so, if
145 * we audit here, then we can't go on to phase 2.
146 */
147 do_audit_syscall_entry(regs, arch);
148 return 0;
149 }
150#endif
151
152 return 1; /* Something is enabled that we can't handle in phase 1 */
153}
154
155/* Returns the syscall nr to run (which should match regs->orig_ax). */
156long syscall_trace_enter_phase2(struct pt_regs *regs, u32 arch,
157 unsigned long phase1_result)
158{
dd636071 159 struct thread_info *ti = pt_regs_to_thread_info(regs);
1f484aa6 160 long ret = 0;
dd636071 161 u32 work = ACCESS_ONCE(ti->flags) & _TIF_WORK_SYSCALL_ENTRY;
1f484aa6 162
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163 if (IS_ENABLED(CONFIG_DEBUG_ENTRY))
164 BUG_ON(regs != task_pt_regs(current));
1f484aa6 165
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166#ifdef CONFIG_SECCOMP
167 /*
168 * Call seccomp_phase2 before running the other hooks so that
169 * they can see any changes made by a seccomp tracer.
170 */
171 if (phase1_result > 1 && seccomp_phase2(phase1_result)) {
172 /* seccomp failures shouldn't expose any additional code. */
173 return -1;
174 }
175#endif
176
177 if (unlikely(work & _TIF_SYSCALL_EMU))
178 ret = -1L;
179
180 if ((ret || test_thread_flag(TIF_SYSCALL_TRACE)) &&
181 tracehook_report_syscall_entry(regs))
182 ret = -1L;
183
184 if (unlikely(test_thread_flag(TIF_SYSCALL_TRACEPOINT)))
185 trace_sys_enter(regs, regs->orig_ax);
186
187 do_audit_syscall_entry(regs, arch);
188
189 return ret ?: regs->orig_ax;
190}
191
192long syscall_trace_enter(struct pt_regs *regs)
193{
abfb9498 194 u32 arch = in_ia32_syscall() ? AUDIT_ARCH_I386 : AUDIT_ARCH_X86_64;
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195 unsigned long phase1_result = syscall_trace_enter_phase1(regs, arch);
196
197 if (phase1_result == 0)
198 return regs->orig_ax;
199 else
200 return syscall_trace_enter_phase2(regs, arch, phase1_result);
201}
202
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203#define EXIT_TO_USERMODE_LOOP_FLAGS \
204 (_TIF_SIGPENDING | _TIF_NOTIFY_RESUME | _TIF_UPROBE | \
205 _TIF_NEED_RESCHED | _TIF_USER_RETURN_NOTIFY)
72f92478 206
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207static void exit_to_usermode_loop(struct pt_regs *regs, u32 cached_flags)
208{
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209 /*
210 * In order to return to user mode, we need to have IRQs off with
211 * none of _TIF_SIGPENDING, _TIF_NOTIFY_RESUME, _TIF_USER_RETURN_NOTIFY,
212 * _TIF_UPROBE, or _TIF_NEED_RESCHED set. Several of these flags
213 * can be set at any time on preemptable kernels if we have IRQs on,
214 * so we need to loop. Disabling preemption wouldn't help: doing the
215 * work to clear some of the flags can sleep.
216 */
217 while (true) {
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218 /* We have work to do. */
219 local_irq_enable();
220
221 if (cached_flags & _TIF_NEED_RESCHED)
222 schedule();
223
224 if (cached_flags & _TIF_UPROBE)
225 uprobe_notify_resume(regs);
226
227 /* deal with pending signal delivery */
228 if (cached_flags & _TIF_SIGPENDING)
229 do_signal(regs);
230
231 if (cached_flags & _TIF_NOTIFY_RESUME) {
232 clear_thread_flag(TIF_NOTIFY_RESUME);
233 tracehook_notify_resume(regs);
b29fe541 234 rseq_handle_notify_resume(regs);
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235 }
236
237 if (cached_flags & _TIF_USER_RETURN_NOTIFY)
238 fire_user_return_notifiers();
239
240 /* Disable IRQs and retry */
241 local_irq_disable();
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242
243 cached_flags = READ_ONCE(pt_regs_to_thread_info(regs)->flags);
244
245 if (!(cached_flags & EXIT_TO_USERMODE_LOOP_FLAGS))
246 break;
247
c5c46f59 248 }
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249}
250
251/* Called with IRQs disabled. */
252__visible inline void prepare_exit_to_usermode(struct pt_regs *regs)
253{
4e79e182 254 struct thread_info *ti = pt_regs_to_thread_info(regs);
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255 u32 cached_flags;
256
257 if (IS_ENABLED(CONFIG_PROVE_LOCKING) && WARN_ON(!irqs_disabled()))
258 local_irq_disable();
259
260 lockdep_sys_exit();
261
4e79e182 262 cached_flags = READ_ONCE(ti->flags);
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263
264 if (unlikely(cached_flags & EXIT_TO_USERMODE_LOOP_FLAGS))
265 exit_to_usermode_loop(regs, cached_flags);
c5c46f59 266
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267#ifdef CONFIG_COMPAT
268 /*
269 * Compat syscalls set TS_COMPAT. Make sure we clear it before
270 * returning to user mode. We need to clear it *after* signal
271 * handling, because syscall restart has a fixup for compat
272 * syscalls. The fixup is exercised by the ptrace_syscall_32
273 * selftest.
274 */
275 ti->status &= ~TS_COMPAT;
276#endif
277
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278 user_enter();
279}
280
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281#define SYSCALL_EXIT_WORK_FLAGS \
282 (_TIF_SYSCALL_TRACE | _TIF_SYSCALL_AUDIT | \
283 _TIF_SINGLESTEP | _TIF_SYSCALL_TRACEPOINT)
284
285static void syscall_slow_exit_work(struct pt_regs *regs, u32 cached_flags)
286{
287 bool step;
288
289 audit_syscall_exit(regs);
290
291 if (cached_flags & _TIF_SYSCALL_TRACEPOINT)
292 trace_sys_exit(regs, regs->ax);
293
294 /*
295 * If TIF_SYSCALL_EMU is set, we only get here because of
296 * TIF_SINGLESTEP (i.e. this is PTRACE_SYSEMU_SINGLESTEP).
297 * We already reported this syscall instruction in
298 * syscall_trace_enter().
299 */
300 step = unlikely(
301 (cached_flags & (_TIF_SINGLESTEP | _TIF_SYSCALL_EMU))
302 == _TIF_SINGLESTEP);
303 if (step || cached_flags & _TIF_SYSCALL_TRACE)
304 tracehook_report_syscall_exit(regs, step);
305}
306
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307/*
308 * Called with IRQs on and fully valid regs. Returns with IRQs off in a
309 * state such that we can immediately switch to user mode.
310 */
f5e6a975 311__visible inline void syscall_return_slowpath(struct pt_regs *regs)
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312{
313 struct thread_info *ti = pt_regs_to_thread_info(regs);
314 u32 cached_flags = READ_ONCE(ti->flags);
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315
316 CT_WARN_ON(ct_state() != CONTEXT_KERNEL);
317
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318 if (IS_ENABLED(CONFIG_PROVE_LOCKING) &&
319 WARN(irqs_disabled(), "syscall %ld left IRQs disabled", regs->orig_ax))
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320 local_irq_enable();
321
322 /*
323 * First do one-time work. If these work items are enabled, we
324 * want to run them exactly once per syscall exit with IRQs on.
325 */
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326 if (unlikely(cached_flags & SYSCALL_EXIT_WORK_FLAGS))
327 syscall_slow_exit_work(regs, cached_flags);
c5c46f59 328
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329 local_irq_disable();
330 prepare_exit_to_usermode(regs);
331}
bd2d3a3b 332
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333#ifdef CONFIG_X86_64
334__visible void do_syscall_64(struct pt_regs *regs)
335{
336 struct thread_info *ti = pt_regs_to_thread_info(regs);
337 unsigned long nr = regs->orig_ax;
338
9999c8c0 339 enter_from_user_mode();
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340 local_irq_enable();
341
342 if (READ_ONCE(ti->flags) & _TIF_WORK_SYSCALL_ENTRY)
343 nr = syscall_trace_enter(regs);
344
345 /*
346 * NB: Native and x32 syscalls are dispatched from the same
347 * table. The only functional difference is the x32 bit in
348 * regs->orig_ax, which changes the behavior of some syscalls.
349 */
350 if (likely((nr & __SYSCALL_MASK) < NR_syscalls)) {
351 regs->ax = sys_call_table[nr & __SYSCALL_MASK](
352 regs->di, regs->si, regs->dx,
353 regs->r10, regs->r8, regs->r9);
354 }
355
356 syscall_return_slowpath(regs);
357}
358#endif
359
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360#if defined(CONFIG_X86_32) || defined(CONFIG_IA32_EMULATION)
361/*
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362 * Does a 32-bit syscall. Called with IRQs on in CONTEXT_KERNEL. Does
363 * all entry and exit work and returns with IRQs off. This function is
364 * extremely hot in workloads that use it, and it's usually called from
33c52129 365 * do_fast_syscall_32, so forcibly inline it to improve performance.
bd2d3a3b 366 */
a798f091 367static __always_inline void do_syscall_32_irqs_on(struct pt_regs *regs)
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368{
369 struct thread_info *ti = pt_regs_to_thread_info(regs);
370 unsigned int nr = (unsigned int)regs->orig_ax;
371
372#ifdef CONFIG_IA32_EMULATION
373 ti->status |= TS_COMPAT;
374#endif
375
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376 if (READ_ONCE(ti->flags) & _TIF_WORK_SYSCALL_ENTRY) {
377 /*
378 * Subtlety here: if ptrace pokes something larger than
379 * 2^32-1 into orig_ax, this truncates it. This may or
380 * may not be necessary, but it matches the old asm
381 * behavior.
382 */
383 nr = syscall_trace_enter(regs);
384 }
385
33c52129 386 if (likely(nr < IA32_NR_syscalls)) {
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387 /*
388 * It's possible that a 32-bit syscall implementation
389 * takes a 64-bit parameter but nonetheless assumes that
390 * the high bits are zero. Make sure we zero-extend all
391 * of the args.
392 */
393 regs->ax = ia32_sys_call_table[nr](
394 (unsigned int)regs->bx, (unsigned int)regs->cx,
395 (unsigned int)regs->dx, (unsigned int)regs->si,
396 (unsigned int)regs->di, (unsigned int)regs->bp);
397 }
398
399 syscall_return_slowpath(regs);
400}
710246df 401
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402/* Handles int $0x80 */
403__visible void do_int80_syscall_32(struct pt_regs *regs)
8b13c255 404{
9999c8c0 405 enter_from_user_mode();
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406 local_irq_enable();
407 do_syscall_32_irqs_on(regs);
408}
409
5f310f73 410/* Returns 0 to return using IRET or 1 to return using SYSEXIT/SYSRETL. */
7841b408 411__visible long do_fast_syscall_32(struct pt_regs *regs)
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412{
413 /*
414 * Called using the internal vDSO SYSENTER/SYSCALL32 calling
415 * convention. Adjust regs so it looks like we entered using int80.
416 */
417
418 unsigned long landing_pad = (unsigned long)current->mm->context.vdso +
419 vdso_image_32.sym_int80_landing_pad;
420
421 /*
422 * SYSENTER loses EIP, and even SYSCALL32 needs us to skip forward
423 * so that 'regs->ip -= 2' lands back on an int $0x80 instruction.
424 * Fix it up.
425 */
426 regs->ip = landing_pad;
427
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428 enter_from_user_mode();
429
710246df 430 local_irq_enable();
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431
432 /* Fetch EBP from where the vDSO stashed it. */
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433 if (
434#ifdef CONFIG_X86_64
435 /*
436 * Micro-optimization: the pointer we're following is explicitly
437 * 32 bits, so it can't be out of range.
438 */
30bfa7b3 439 __get_user(*(u32 *)&regs->bp,
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440 (u32 __user __force *)(unsigned long)(u32)regs->sp)
441#else
30bfa7b3 442 get_user(*(u32 *)&regs->bp,
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443 (u32 __user __force *)(unsigned long)(u32)regs->sp)
444#endif
445 ) {
446
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447 /* User code screwed up. */
448 local_irq_disable();
449 regs->ax = -EFAULT;
710246df 450 prepare_exit_to_usermode(regs);
7841b408 451 return 0; /* Keep it simple: use IRET. */
710246df 452 }
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453
454 /* Now this is just like a normal syscall. */
8b13c255 455 do_syscall_32_irqs_on(regs);
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456
457#ifdef CONFIG_X86_64
458 /*
459 * Opportunistic SYSRETL: if possible, try to return using SYSRETL.
460 * SYSRETL is available on all 64-bit CPUs, so we don't need to
461 * bother with SYSEXIT.
462 *
463 * Unlike 64-bit opportunistic SYSRET, we can't check that CX == IP,
464 * because the ECX fixup above will ensure that this is essentially
465 * never the case.
466 */
467 return regs->cs == __USER32_CS && regs->ss == __USER_DS &&
468 regs->ip == landing_pad &&
469 (regs->flags & (X86_EFLAGS_RF | X86_EFLAGS_TF)) == 0;
470#else
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471 /*
472 * Opportunistic SYSEXIT: if possible, try to return using SYSEXIT.
473 *
474 * Unlike 64-bit opportunistic SYSRET, we can't check that CX == IP,
475 * because the ECX fixup above will ensure that this is essentially
476 * never the case.
477 *
478 * We don't allow syscalls at all from VM86 mode, but we still
479 * need to check VM, because we might be returning from sys_vm86.
480 */
481 return static_cpu_has(X86_FEATURE_SEP) &&
482 regs->cs == __USER_CS && regs->ss == __USER_DS &&
483 regs->ip == landing_pad &&
484 (regs->flags & (X86_EFLAGS_RF | X86_EFLAGS_TF | X86_EFLAGS_VM)) == 0;
7841b408 485#endif
710246df 486}
bd2d3a3b 487#endif
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