1 // SPDX-License-Identifier: GPL-2.0-only
2 #include <linux/init.h>
5 #include <linux/spinlock.h>
7 #include <linux/interrupt.h>
8 #include <linux/export.h>
10 #include <linux/debugfs.h>
12 #include <asm/tlbflush.h>
13 #include <asm/mmu_context.h>
14 #include <asm/nospec-branch.h>
15 #include <asm/cache.h>
17 #include <asm/uv/uv.h>
19 #include "mm_internal.h"
21 #ifdef CONFIG_PARAVIRT
24 # define STATIC_NOPV static
25 # define __flush_tlb_local native_flush_tlb_local
26 # define __flush_tlb_global native_flush_tlb_global
27 # define __flush_tlb_one_user(addr) native_flush_tlb_one_user(addr)
28 # define __flush_tlb_others(msk, info) native_flush_tlb_others(msk, info)
32 * TLB flushing, formerly SMP-only
35 * These mean you can really definitely utterly forget about
36 * writing to user space from interrupts. (Its not allowed anyway).
38 * Optimizations Manfred Spraul <manfred@colorfullife.com>
40 * More scalable flush, from Andi Kleen
42 * Implement flush IPI by CALL_FUNCTION_VECTOR, Alex Shi
46 * Use bit 0 to mangle the TIF_SPEC_IB state into the mm pointer which is
47 * stored in cpu_tlb_state.last_user_mm_ibpb.
49 #define LAST_USER_MM_IBPB 0x1UL
52 * The x86 feature is called PCID (Process Context IDentifier). It is similar
53 * to what is traditionally called ASID on the RISC processors.
55 * We don't use the traditional ASID implementation, where each process/mm gets
56 * its own ASID and flush/restart when we run out of ASID space.
58 * Instead we have a small per-cpu array of ASIDs and cache the last few mm's
59 * that came by on this CPU, allowing cheaper switch_mm between processes on
62 * We end up with different spaces for different things. To avoid confusion we
63 * use different names for each of them:
65 * ASID - [0, TLB_NR_DYN_ASIDS-1]
66 * the canonical identifier for an mm
68 * kPCID - [1, TLB_NR_DYN_ASIDS]
69 * the value we write into the PCID part of CR3; corresponds to the
70 * ASID+1, because PCID 0 is special.
72 * uPCID - [2048 + 1, 2048 + TLB_NR_DYN_ASIDS]
73 * for KPTI each mm has two address spaces and thus needs two
74 * PCID values, but we can still do with a single ASID denomination
75 * for each mm. Corresponds to kPCID + 2048.
79 /* There are 12 bits of space for ASIDS in CR3 */
80 #define CR3_HW_ASID_BITS 12
83 * When enabled, PAGE_TABLE_ISOLATION consumes a single bit for
84 * user/kernel switches
86 #ifdef CONFIG_PAGE_TABLE_ISOLATION
87 # define PTI_CONSUMED_PCID_BITS 1
89 # define PTI_CONSUMED_PCID_BITS 0
92 #define CR3_AVAIL_PCID_BITS (X86_CR3_PCID_BITS - PTI_CONSUMED_PCID_BITS)
95 * ASIDs are zero-based: 0->MAX_AVAIL_ASID are valid. -1 below to account
96 * for them being zero-based. Another -1 is because PCID 0 is reserved for
97 * use by non-PCID-aware users.
99 #define MAX_ASID_AVAILABLE ((1 << CR3_AVAIL_PCID_BITS) - 2)
102 * Given @asid, compute kPCID
104 static inline u16 kern_pcid(u16 asid)
106 VM_WARN_ON_ONCE(asid > MAX_ASID_AVAILABLE);
108 #ifdef CONFIG_PAGE_TABLE_ISOLATION
110 * Make sure that the dynamic ASID space does not confict with the
111 * bit we are using to switch between user and kernel ASIDs.
113 BUILD_BUG_ON(TLB_NR_DYN_ASIDS >= (1 << X86_CR3_PTI_PCID_USER_BIT));
116 * The ASID being passed in here should have respected the
117 * MAX_ASID_AVAILABLE and thus never have the switch bit set.
119 VM_WARN_ON_ONCE(asid & (1 << X86_CR3_PTI_PCID_USER_BIT));
122 * The dynamically-assigned ASIDs that get passed in are small
123 * (<TLB_NR_DYN_ASIDS). They never have the high switch bit set,
124 * so do not bother to clear it.
126 * If PCID is on, ASID-aware code paths put the ASID+1 into the
127 * PCID bits. This serves two purposes. It prevents a nasty
128 * situation in which PCID-unaware code saves CR3, loads some other
129 * value (with PCID == 0), and then restores CR3, thus corrupting
130 * the TLB for ASID 0 if the saved ASID was nonzero. It also means
131 * that any bugs involving loading a PCID-enabled CR3 with
132 * CR4.PCIDE off will trigger deterministically.
138 * Given @asid, compute uPCID
140 static inline u16 user_pcid(u16 asid)
142 u16 ret = kern_pcid(asid);
143 #ifdef CONFIG_PAGE_TABLE_ISOLATION
144 ret |= 1 << X86_CR3_PTI_PCID_USER_BIT;
149 static inline unsigned long build_cr3(pgd_t *pgd, u16 asid)
151 if (static_cpu_has(X86_FEATURE_PCID)) {
152 return __sme_pa(pgd) | kern_pcid(asid);
154 VM_WARN_ON_ONCE(asid != 0);
155 return __sme_pa(pgd);
159 static inline unsigned long build_cr3_noflush(pgd_t *pgd, u16 asid)
161 VM_WARN_ON_ONCE(asid > MAX_ASID_AVAILABLE);
163 * Use boot_cpu_has() instead of this_cpu_has() as this function
164 * might be called during early boot. This should work even after
165 * boot because all CPU's the have same capabilities:
167 VM_WARN_ON_ONCE(!boot_cpu_has(X86_FEATURE_PCID));
168 return __sme_pa(pgd) | kern_pcid(asid) | CR3_NOFLUSH;
172 * We get here when we do something requiring a TLB invalidation
173 * but could not go invalidate all of the contexts. We do the
174 * necessary invalidation by clearing out the 'ctx_id' which
175 * forces a TLB flush when the context is loaded.
177 static void clear_asid_other(void)
182 * This is only expected to be set if we have disabled
183 * kernel _PAGE_GLOBAL pages.
185 if (!static_cpu_has(X86_FEATURE_PTI)) {
190 for (asid = 0; asid < TLB_NR_DYN_ASIDS; asid++) {
191 /* Do not need to flush the current asid */
192 if (asid == this_cpu_read(cpu_tlbstate.loaded_mm_asid))
195 * Make sure the next time we go to switch to
196 * this asid, we do a flush:
198 this_cpu_write(cpu_tlbstate.ctxs[asid].ctx_id, 0);
200 this_cpu_write(cpu_tlbstate.invalidate_other, false);
203 atomic64_t last_mm_ctx_id = ATOMIC64_INIT(1);
206 static void choose_new_asid(struct mm_struct *next, u64 next_tlb_gen,
207 u16 *new_asid, bool *need_flush)
211 if (!static_cpu_has(X86_FEATURE_PCID)) {
217 if (this_cpu_read(cpu_tlbstate.invalidate_other))
220 for (asid = 0; asid < TLB_NR_DYN_ASIDS; asid++) {
221 if (this_cpu_read(cpu_tlbstate.ctxs[asid].ctx_id) !=
222 next->context.ctx_id)
226 *need_flush = (this_cpu_read(cpu_tlbstate.ctxs[asid].tlb_gen) <
232 * We don't currently own an ASID slot on this CPU.
235 *new_asid = this_cpu_add_return(cpu_tlbstate.next_asid, 1) - 1;
236 if (*new_asid >= TLB_NR_DYN_ASIDS) {
238 this_cpu_write(cpu_tlbstate.next_asid, 1);
244 * Given an ASID, flush the corresponding user ASID. We can delay this
245 * until the next time we switch to it.
247 * See SWITCH_TO_USER_CR3.
249 static inline void invalidate_user_asid(u16 asid)
251 /* There is no user ASID if address space separation is off */
252 if (!IS_ENABLED(CONFIG_PAGE_TABLE_ISOLATION))
256 * We only have a single ASID if PCID is off and the CR3
257 * write will have flushed it.
259 if (!cpu_feature_enabled(X86_FEATURE_PCID))
262 if (!static_cpu_has(X86_FEATURE_PTI))
265 __set_bit(kern_pcid(asid),
266 (unsigned long *)this_cpu_ptr(&cpu_tlbstate.user_pcid_flush_mask));
269 static void load_new_mm_cr3(pgd_t *pgdir, u16 new_asid, bool need_flush)
271 unsigned long new_mm_cr3;
274 invalidate_user_asid(new_asid);
275 new_mm_cr3 = build_cr3(pgdir, new_asid);
277 new_mm_cr3 = build_cr3_noflush(pgdir, new_asid);
281 * Caution: many callers of this function expect
282 * that load_cr3() is serializing and orders TLB
283 * fills with respect to the mm_cpumask writes.
285 write_cr3(new_mm_cr3);
288 void leave_mm(int cpu)
290 struct mm_struct *loaded_mm = this_cpu_read(cpu_tlbstate.loaded_mm);
293 * It's plausible that we're in lazy TLB mode while our mm is init_mm.
294 * If so, our callers still expect us to flush the TLB, but there
295 * aren't any user TLB entries in init_mm to worry about.
297 * This needs to happen before any other sanity checks due to
298 * intel_idle's shenanigans.
300 if (loaded_mm == &init_mm)
303 /* Warn if we're not lazy. */
304 WARN_ON(!this_cpu_read(cpu_tlbstate.is_lazy));
306 switch_mm(NULL, &init_mm, NULL);
308 EXPORT_SYMBOL_GPL(leave_mm);
310 void switch_mm(struct mm_struct *prev, struct mm_struct *next,
311 struct task_struct *tsk)
315 local_irq_save(flags);
316 switch_mm_irqs_off(prev, next, tsk);
317 local_irq_restore(flags);
320 static inline unsigned long mm_mangle_tif_spec_ib(struct task_struct *next)
322 unsigned long next_tif = task_thread_info(next)->flags;
323 unsigned long ibpb = (next_tif >> TIF_SPEC_IB) & LAST_USER_MM_IBPB;
325 return (unsigned long)next->mm | ibpb;
328 static void cond_ibpb(struct task_struct *next)
330 if (!next || !next->mm)
334 * Both, the conditional and the always IBPB mode use the mm
335 * pointer to avoid the IBPB when switching between tasks of the
336 * same process. Using the mm pointer instead of mm->context.ctx_id
337 * opens a hypothetical hole vs. mm_struct reuse, which is more or
338 * less impossible to control by an attacker. Aside of that it
339 * would only affect the first schedule so the theoretically
340 * exposed data is not really interesting.
342 if (static_branch_likely(&switch_mm_cond_ibpb)) {
343 unsigned long prev_mm, next_mm;
346 * This is a bit more complex than the always mode because
347 * it has to handle two cases:
349 * 1) Switch from a user space task (potential attacker)
350 * which has TIF_SPEC_IB set to a user space task
351 * (potential victim) which has TIF_SPEC_IB not set.
353 * 2) Switch from a user space task (potential attacker)
354 * which has TIF_SPEC_IB not set to a user space task
355 * (potential victim) which has TIF_SPEC_IB set.
357 * This could be done by unconditionally issuing IBPB when
358 * a task which has TIF_SPEC_IB set is either scheduled in
359 * or out. Though that results in two flushes when:
361 * - the same user space task is scheduled out and later
362 * scheduled in again and only a kernel thread ran in
365 * - a user space task belonging to the same process is
366 * scheduled in after a kernel thread ran in between
368 * - a user space task belonging to the same process is
369 * scheduled in immediately.
371 * Optimize this with reasonably small overhead for the
372 * above cases. Mangle the TIF_SPEC_IB bit into the mm
373 * pointer of the incoming task which is stored in
374 * cpu_tlbstate.last_user_mm_ibpb for comparison.
376 next_mm = mm_mangle_tif_spec_ib(next);
377 prev_mm = this_cpu_read(cpu_tlbstate.last_user_mm_ibpb);
380 * Issue IBPB only if the mm's are different and one or
381 * both have the IBPB bit set.
383 if (next_mm != prev_mm &&
384 (next_mm | prev_mm) & LAST_USER_MM_IBPB)
385 indirect_branch_prediction_barrier();
387 this_cpu_write(cpu_tlbstate.last_user_mm_ibpb, next_mm);
390 if (static_branch_unlikely(&switch_mm_always_ibpb)) {
392 * Only flush when switching to a user space task with a
393 * different context than the user space task which ran
396 if (this_cpu_read(cpu_tlbstate.last_user_mm) != next->mm) {
397 indirect_branch_prediction_barrier();
398 this_cpu_write(cpu_tlbstate.last_user_mm, next->mm);
403 #ifdef CONFIG_PERF_EVENTS
404 static inline void cr4_update_pce_mm(struct mm_struct *mm)
406 if (static_branch_unlikely(&rdpmc_always_available_key) ||
407 (!static_branch_unlikely(&rdpmc_never_available_key) &&
408 atomic_read(&mm->context.perf_rdpmc_allowed)))
409 cr4_set_bits_irqsoff(X86_CR4_PCE);
411 cr4_clear_bits_irqsoff(X86_CR4_PCE);
414 void cr4_update_pce(void *ignored)
416 cr4_update_pce_mm(this_cpu_read(cpu_tlbstate.loaded_mm));
420 static inline void cr4_update_pce_mm(struct mm_struct *mm) { }
423 void switch_mm_irqs_off(struct mm_struct *prev, struct mm_struct *next,
424 struct task_struct *tsk)
426 struct mm_struct *real_prev = this_cpu_read(cpu_tlbstate.loaded_mm);
427 u16 prev_asid = this_cpu_read(cpu_tlbstate.loaded_mm_asid);
428 bool was_lazy = this_cpu_read(cpu_tlbstate.is_lazy);
429 unsigned cpu = smp_processor_id();
435 * NB: The scheduler will call us with prev == next when switching
436 * from lazy TLB mode to normal mode if active_mm isn't changing.
437 * When this happens, we don't assume that CR3 (and hence
438 * cpu_tlbstate.loaded_mm) matches next.
440 * NB: leave_mm() calls us with prev == NULL and tsk == NULL.
443 /* We don't want flush_tlb_func_* to run concurrently with us. */
444 if (IS_ENABLED(CONFIG_PROVE_LOCKING))
445 WARN_ON_ONCE(!irqs_disabled());
448 * Verify that CR3 is what we think it is. This will catch
449 * hypothetical buggy code that directly switches to swapper_pg_dir
450 * without going through leave_mm() / switch_mm_irqs_off() or that
451 * does something like write_cr3(read_cr3_pa()).
453 * Only do this check if CONFIG_DEBUG_VM=y because __read_cr3()
456 #ifdef CONFIG_DEBUG_VM
457 if (WARN_ON_ONCE(__read_cr3() != build_cr3(real_prev->pgd, prev_asid))) {
459 * If we were to BUG here, we'd be very likely to kill
460 * the system so hard that we don't see the call trace.
461 * Try to recover instead by ignoring the error and doing
462 * a global flush to minimize the chance of corruption.
464 * (This is far from being a fully correct recovery.
465 * Architecturally, the CPU could prefetch something
466 * back into an incorrect ASID slot and leave it there
467 * to cause trouble down the road. It's better than
473 this_cpu_write(cpu_tlbstate.is_lazy, false);
476 * The membarrier system call requires a full memory barrier and
477 * core serialization before returning to user-space, after
478 * storing to rq->curr. Writing to CR3 provides that full
479 * memory barrier and core serializing instruction.
481 if (real_prev == next) {
482 VM_WARN_ON(this_cpu_read(cpu_tlbstate.ctxs[prev_asid].ctx_id) !=
483 next->context.ctx_id);
486 * Even in lazy TLB mode, the CPU should stay set in the
487 * mm_cpumask. The TLB shootdown code can figure out from
488 * from cpu_tlbstate.is_lazy whether or not to send an IPI.
490 if (WARN_ON_ONCE(real_prev != &init_mm &&
491 !cpumask_test_cpu(cpu, mm_cpumask(next))))
492 cpumask_set_cpu(cpu, mm_cpumask(next));
495 * If the CPU is not in lazy TLB mode, we are just switching
496 * from one thread in a process to another thread in the same
497 * process. No TLB flush required.
503 * Read the tlb_gen to check whether a flush is needed.
504 * If the TLB is up to date, just use it.
505 * The barrier synchronizes with the tlb_gen increment in
506 * the TLB shootdown code.
509 next_tlb_gen = atomic64_read(&next->context.tlb_gen);
510 if (this_cpu_read(cpu_tlbstate.ctxs[prev_asid].tlb_gen) ==
515 * TLB contents went out of date while we were in lazy
516 * mode. Fall through to the TLB switching code below.
518 new_asid = prev_asid;
522 * Avoid user/user BTB poisoning by flushing the branch
523 * predictor when switching between processes. This stops
524 * one process from doing Spectre-v2 attacks on another.
529 * Stop remote flushes for the previous mm.
530 * Skip kernel threads; we never send init_mm TLB flushing IPIs,
531 * but the bitmap manipulation can cause cache line contention.
533 if (real_prev != &init_mm) {
534 VM_WARN_ON_ONCE(!cpumask_test_cpu(cpu,
535 mm_cpumask(real_prev)));
536 cpumask_clear_cpu(cpu, mm_cpumask(real_prev));
540 * Start remote flushes and then read tlb_gen.
542 if (next != &init_mm)
543 cpumask_set_cpu(cpu, mm_cpumask(next));
544 next_tlb_gen = atomic64_read(&next->context.tlb_gen);
546 choose_new_asid(next, next_tlb_gen, &new_asid, &need_flush);
548 /* Let nmi_uaccess_okay() know that we're changing CR3. */
549 this_cpu_write(cpu_tlbstate.loaded_mm, LOADED_MM_SWITCHING);
554 this_cpu_write(cpu_tlbstate.ctxs[new_asid].ctx_id, next->context.ctx_id);
555 this_cpu_write(cpu_tlbstate.ctxs[new_asid].tlb_gen, next_tlb_gen);
556 load_new_mm_cr3(next->pgd, new_asid, true);
559 * NB: This gets called via leave_mm() in the idle path
560 * where RCU functions differently. Tracing normally
561 * uses RCU, so we need to use the _rcuidle variant.
563 * (There is no good reason for this. The idle code should
564 * be rearranged to call this before rcu_idle_enter().)
566 trace_tlb_flush_rcuidle(TLB_FLUSH_ON_TASK_SWITCH, TLB_FLUSH_ALL);
568 /* The new ASID is already up to date. */
569 load_new_mm_cr3(next->pgd, new_asid, false);
571 /* See above wrt _rcuidle. */
572 trace_tlb_flush_rcuidle(TLB_FLUSH_ON_TASK_SWITCH, 0);
575 /* Make sure we write CR3 before loaded_mm. */
578 this_cpu_write(cpu_tlbstate.loaded_mm, next);
579 this_cpu_write(cpu_tlbstate.loaded_mm_asid, new_asid);
581 if (next != real_prev) {
582 cr4_update_pce_mm(next);
583 switch_ldt(real_prev, next);
588 * Please ignore the name of this function. It should be called
589 * switch_to_kernel_thread().
591 * enter_lazy_tlb() is a hint from the scheduler that we are entering a
592 * kernel thread or other context without an mm. Acceptable implementations
593 * include doing nothing whatsoever, switching to init_mm, or various clever
594 * lazy tricks to try to minimize TLB flushes.
596 * The scheduler reserves the right to call enter_lazy_tlb() several times
597 * in a row. It will notify us that we're going back to a real mm by
598 * calling switch_mm_irqs_off().
600 void enter_lazy_tlb(struct mm_struct *mm, struct task_struct *tsk)
602 if (this_cpu_read(cpu_tlbstate.loaded_mm) == &init_mm)
605 this_cpu_write(cpu_tlbstate.is_lazy, true);
609 * Call this when reinitializing a CPU. It fixes the following potential
612 * - The ASID changed from what cpu_tlbstate thinks it is (most likely
613 * because the CPU was taken down and came back up with CR3's PCID
614 * bits clear. CPU hotplug can do this.
616 * - The TLB contains junk in slots corresponding to inactive ASIDs.
618 * - The CPU went so far out to lunch that it may have missed a TLB
621 void initialize_tlbstate_and_flush(void)
624 struct mm_struct *mm = this_cpu_read(cpu_tlbstate.loaded_mm);
625 u64 tlb_gen = atomic64_read(&init_mm.context.tlb_gen);
626 unsigned long cr3 = __read_cr3();
628 /* Assert that CR3 already references the right mm. */
629 WARN_ON((cr3 & CR3_ADDR_MASK) != __pa(mm->pgd));
632 * Assert that CR4.PCIDE is set if needed. (CR4.PCIDE initialization
633 * doesn't work like other CR4 bits because it can only be set from
636 WARN_ON(boot_cpu_has(X86_FEATURE_PCID) &&
637 !(cr4_read_shadow() & X86_CR4_PCIDE));
639 /* Force ASID 0 and force a TLB flush. */
640 write_cr3(build_cr3(mm->pgd, 0));
642 /* Reinitialize tlbstate. */
643 this_cpu_write(cpu_tlbstate.last_user_mm_ibpb, LAST_USER_MM_IBPB);
644 this_cpu_write(cpu_tlbstate.loaded_mm_asid, 0);
645 this_cpu_write(cpu_tlbstate.next_asid, 1);
646 this_cpu_write(cpu_tlbstate.ctxs[0].ctx_id, mm->context.ctx_id);
647 this_cpu_write(cpu_tlbstate.ctxs[0].tlb_gen, tlb_gen);
649 for (i = 1; i < TLB_NR_DYN_ASIDS; i++)
650 this_cpu_write(cpu_tlbstate.ctxs[i].ctx_id, 0);
654 * flush_tlb_func_common()'s memory ordering requirement is that any
655 * TLB fills that happen after we flush the TLB are ordered after we
656 * read active_mm's tlb_gen. We don't need any explicit barriers
657 * because all x86 flush operations are serializing and the
658 * atomic64_read operation won't be reordered by the compiler.
660 static void flush_tlb_func_common(const struct flush_tlb_info *f,
661 bool local, enum tlb_flush_reason reason)
664 * We have three different tlb_gen values in here. They are:
666 * - mm_tlb_gen: the latest generation.
667 * - local_tlb_gen: the generation that this CPU has already caught
669 * - f->new_tlb_gen: the generation that the requester of the flush
670 * wants us to catch up to.
672 struct mm_struct *loaded_mm = this_cpu_read(cpu_tlbstate.loaded_mm);
673 u32 loaded_mm_asid = this_cpu_read(cpu_tlbstate.loaded_mm_asid);
674 u64 mm_tlb_gen = atomic64_read(&loaded_mm->context.tlb_gen);
675 u64 local_tlb_gen = this_cpu_read(cpu_tlbstate.ctxs[loaded_mm_asid].tlb_gen);
677 /* This code cannot presently handle being reentered. */
678 VM_WARN_ON(!irqs_disabled());
680 if (unlikely(loaded_mm == &init_mm))
683 VM_WARN_ON(this_cpu_read(cpu_tlbstate.ctxs[loaded_mm_asid].ctx_id) !=
684 loaded_mm->context.ctx_id);
686 if (this_cpu_read(cpu_tlbstate.is_lazy)) {
688 * We're in lazy mode. We need to at least flush our
689 * paging-structure cache to avoid speculatively reading
690 * garbage into our TLB. Since switching to init_mm is barely
691 * slower than a minimal flush, just switch to init_mm.
693 * This should be rare, with native_flush_tlb_others skipping
694 * IPIs to lazy TLB mode CPUs.
696 switch_mm_irqs_off(NULL, &init_mm, NULL);
700 if (unlikely(local_tlb_gen == mm_tlb_gen)) {
702 * There's nothing to do: we're already up to date. This can
703 * happen if two concurrent flushes happen -- the first flush to
704 * be handled can catch us all the way up, leaving no work for
707 trace_tlb_flush(reason, 0);
711 WARN_ON_ONCE(local_tlb_gen > mm_tlb_gen);
712 WARN_ON_ONCE(f->new_tlb_gen > mm_tlb_gen);
715 * If we get to this point, we know that our TLB is out of date.
716 * This does not strictly imply that we need to flush (it's
717 * possible that f->new_tlb_gen <= local_tlb_gen), but we're
718 * going to need to flush in the very near future, so we might
719 * as well get it over with.
721 * The only question is whether to do a full or partial flush.
723 * We do a partial flush if requested and two extra conditions
726 * 1. f->new_tlb_gen == local_tlb_gen + 1. We have an invariant that
727 * we've always done all needed flushes to catch up to
728 * local_tlb_gen. If, for example, local_tlb_gen == 2 and
729 * f->new_tlb_gen == 3, then we know that the flush needed to bring
730 * us up to date for tlb_gen 3 is the partial flush we're
733 * As an example of why this check is needed, suppose that there
734 * are two concurrent flushes. The first is a full flush that
735 * changes context.tlb_gen from 1 to 2. The second is a partial
736 * flush that changes context.tlb_gen from 2 to 3. If they get
737 * processed on this CPU in reverse order, we'll see
738 * local_tlb_gen == 1, mm_tlb_gen == 3, and end != TLB_FLUSH_ALL.
739 * If we were to use __flush_tlb_one_user() and set local_tlb_gen to
740 * 3, we'd be break the invariant: we'd update local_tlb_gen above
741 * 1 without the full flush that's needed for tlb_gen 2.
743 * 2. f->new_tlb_gen == mm_tlb_gen. This is purely an optimiation.
744 * Partial TLB flushes are not all that much cheaper than full TLB
745 * flushes, so it seems unlikely that it would be a performance win
746 * to do a partial flush if that won't bring our TLB fully up to
747 * date. By doing a full flush instead, we can increase
748 * local_tlb_gen all the way to mm_tlb_gen and we can probably
749 * avoid another flush in the very near future.
751 if (f->end != TLB_FLUSH_ALL &&
752 f->new_tlb_gen == local_tlb_gen + 1 &&
753 f->new_tlb_gen == mm_tlb_gen) {
755 unsigned long nr_invalidate = (f->end - f->start) >> f->stride_shift;
756 unsigned long addr = f->start;
758 while (addr < f->end) {
759 flush_tlb_one_user(addr);
760 addr += 1UL << f->stride_shift;
763 count_vm_tlb_events(NR_TLB_LOCAL_FLUSH_ONE, nr_invalidate);
764 trace_tlb_flush(reason, nr_invalidate);
769 count_vm_tlb_event(NR_TLB_LOCAL_FLUSH_ALL);
770 trace_tlb_flush(reason, TLB_FLUSH_ALL);
773 /* Both paths above update our state to mm_tlb_gen. */
774 this_cpu_write(cpu_tlbstate.ctxs[loaded_mm_asid].tlb_gen, mm_tlb_gen);
777 static void flush_tlb_func_local(const void *info, enum tlb_flush_reason reason)
779 const struct flush_tlb_info *f = info;
781 flush_tlb_func_common(f, true, reason);
784 static void flush_tlb_func_remote(void *info)
786 const struct flush_tlb_info *f = info;
788 inc_irq_stat(irq_tlb_count);
790 if (f->mm && f->mm != this_cpu_read(cpu_tlbstate.loaded_mm))
793 count_vm_tlb_event(NR_TLB_REMOTE_FLUSH_RECEIVED);
794 flush_tlb_func_common(f, false, TLB_REMOTE_SHOOTDOWN);
797 static bool tlb_is_not_lazy(int cpu, void *data)
799 return !per_cpu(cpu_tlbstate.is_lazy, cpu);
802 STATIC_NOPV void native_flush_tlb_others(const struct cpumask *cpumask,
803 const struct flush_tlb_info *info)
805 count_vm_tlb_event(NR_TLB_REMOTE_FLUSH);
806 if (info->end == TLB_FLUSH_ALL)
807 trace_tlb_flush(TLB_REMOTE_SEND_IPI, TLB_FLUSH_ALL);
809 trace_tlb_flush(TLB_REMOTE_SEND_IPI,
810 (info->end - info->start) >> PAGE_SHIFT);
812 if (is_uv_system()) {
814 * This whole special case is confused. UV has a "Broadcast
815 * Assist Unit", which seems to be a fancy way to send IPIs.
816 * Back when x86 used an explicit TLB flush IPI, UV was
817 * optimized to use its own mechanism. These days, x86 uses
818 * smp_call_function_many(), but UV still uses a manual IPI,
819 * and that IPI's action is out of date -- it does a manual
820 * flush instead of calling flush_tlb_func_remote(). This
821 * means that the percpu tlb_gen variables won't be updated
822 * and we'll do pointless flushes on future context switches.
824 * Rather than hooking native_flush_tlb_others() here, I think
825 * that UV should be updated so that smp_call_function_many(),
826 * etc, are optimal on UV.
828 cpumask = uv_flush_tlb_others(cpumask, info);
830 smp_call_function_many(cpumask, flush_tlb_func_remote,
836 * If no page tables were freed, we can skip sending IPIs to
837 * CPUs in lazy TLB mode. They will flush the CPU themselves
838 * at the next context switch.
840 * However, if page tables are getting freed, we need to send the
841 * IPI everywhere, to prevent CPUs in lazy TLB mode from tripping
842 * up on the new contents of what used to be page tables, while
843 * doing a speculative memory access.
845 if (info->freed_tables)
846 smp_call_function_many(cpumask, flush_tlb_func_remote,
849 on_each_cpu_cond_mask(tlb_is_not_lazy, flush_tlb_func_remote,
850 (void *)info, 1, cpumask);
853 void flush_tlb_others(const struct cpumask *cpumask,
854 const struct flush_tlb_info *info)
856 __flush_tlb_others(cpumask, info);
860 * See Documentation/x86/tlb.rst for details. We choose 33
861 * because it is large enough to cover the vast majority (at
862 * least 95%) of allocations, and is small enough that we are
863 * confident it will not cause too much overhead. Each single
864 * flush is about 100 ns, so this caps the maximum overhead at
867 * This is in units of pages.
869 unsigned long tlb_single_page_flush_ceiling __read_mostly = 33;
871 static DEFINE_PER_CPU_SHARED_ALIGNED(struct flush_tlb_info, flush_tlb_info);
873 #ifdef CONFIG_DEBUG_VM
874 static DEFINE_PER_CPU(unsigned int, flush_tlb_info_idx);
877 static inline struct flush_tlb_info *get_flush_tlb_info(struct mm_struct *mm,
878 unsigned long start, unsigned long end,
879 unsigned int stride_shift, bool freed_tables,
882 struct flush_tlb_info *info = this_cpu_ptr(&flush_tlb_info);
884 #ifdef CONFIG_DEBUG_VM
886 * Ensure that the following code is non-reentrant and flush_tlb_info
887 * is not overwritten. This means no TLB flushing is initiated by
888 * interrupt handlers and machine-check exception handlers.
890 BUG_ON(this_cpu_inc_return(flush_tlb_info_idx) != 1);
896 info->stride_shift = stride_shift;
897 info->freed_tables = freed_tables;
898 info->new_tlb_gen = new_tlb_gen;
903 static inline void put_flush_tlb_info(void)
905 #ifdef CONFIG_DEBUG_VM
906 /* Complete reentrency prevention checks */
908 this_cpu_dec(flush_tlb_info_idx);
912 void flush_tlb_mm_range(struct mm_struct *mm, unsigned long start,
913 unsigned long end, unsigned int stride_shift,
916 struct flush_tlb_info *info;
922 /* Should we flush just the requested range? */
923 if ((end == TLB_FLUSH_ALL) ||
924 ((end - start) >> stride_shift) > tlb_single_page_flush_ceiling) {
929 /* This is also a barrier that synchronizes with switch_mm(). */
930 new_tlb_gen = inc_mm_tlb_gen(mm);
932 info = get_flush_tlb_info(mm, start, end, stride_shift, freed_tables,
935 if (mm == this_cpu_read(cpu_tlbstate.loaded_mm)) {
936 lockdep_assert_irqs_enabled();
938 flush_tlb_func_local(info, TLB_LOCAL_MM_SHOOTDOWN);
942 if (cpumask_any_but(mm_cpumask(mm), cpu) < nr_cpu_ids)
943 flush_tlb_others(mm_cpumask(mm), info);
945 put_flush_tlb_info();
950 static void do_flush_tlb_all(void *info)
952 count_vm_tlb_event(NR_TLB_REMOTE_FLUSH_RECEIVED);
956 void flush_tlb_all(void)
958 count_vm_tlb_event(NR_TLB_REMOTE_FLUSH);
959 on_each_cpu(do_flush_tlb_all, NULL, 1);
962 static void do_kernel_range_flush(void *info)
964 struct flush_tlb_info *f = info;
967 /* flush range by one by one 'invlpg' */
968 for (addr = f->start; addr < f->end; addr += PAGE_SIZE)
969 flush_tlb_one_kernel(addr);
972 void flush_tlb_kernel_range(unsigned long start, unsigned long end)
974 /* Balance as user space task's flush, a bit conservative */
975 if (end == TLB_FLUSH_ALL ||
976 (end - start) > tlb_single_page_flush_ceiling << PAGE_SHIFT) {
977 on_each_cpu(do_flush_tlb_all, NULL, 1);
979 struct flush_tlb_info *info;
982 info = get_flush_tlb_info(NULL, start, end, 0, false, 0);
984 on_each_cpu(do_kernel_range_flush, info, 1);
986 put_flush_tlb_info();
992 * This can be used from process context to figure out what the value of
993 * CR3 is without needing to do a (slow) __read_cr3().
995 * It's intended to be used for code like KVM that sneakily changes CR3
996 * and needs to restore it. It needs to be used very carefully.
998 unsigned long __get_current_cr3_fast(void)
1000 unsigned long cr3 = build_cr3(this_cpu_read(cpu_tlbstate.loaded_mm)->pgd,
1001 this_cpu_read(cpu_tlbstate.loaded_mm_asid));
1003 /* For now, be very restrictive about when this can be called. */
1004 VM_WARN_ON(in_nmi() || preemptible());
1006 VM_BUG_ON(cr3 != __read_cr3());
1009 EXPORT_SYMBOL_GPL(__get_current_cr3_fast);
1012 * Flush one page in the kernel mapping
1014 void flush_tlb_one_kernel(unsigned long addr)
1016 count_vm_tlb_event(NR_TLB_LOCAL_FLUSH_ONE);
1019 * If PTI is off, then __flush_tlb_one_user() is just INVLPG or its
1020 * paravirt equivalent. Even with PCID, this is sufficient: we only
1021 * use PCID if we also use global PTEs for the kernel mapping, and
1022 * INVLPG flushes global translations across all address spaces.
1024 * If PTI is on, then the kernel is mapped with non-global PTEs, and
1025 * __flush_tlb_one_user() will flush the given address for the current
1026 * kernel address space and for its usermode counterpart, but it does
1027 * not flush it for other address spaces.
1029 flush_tlb_one_user(addr);
1031 if (!static_cpu_has(X86_FEATURE_PTI))
1035 * See above. We need to propagate the flush to all other address
1036 * spaces. In principle, we only need to propagate it to kernelmode
1037 * address spaces, but the extra bookkeeping we would need is not
1040 this_cpu_write(cpu_tlbstate.invalidate_other, true);
1044 * Flush one page in the user mapping
1046 STATIC_NOPV void native_flush_tlb_one_user(unsigned long addr)
1048 u32 loaded_mm_asid = this_cpu_read(cpu_tlbstate.loaded_mm_asid);
1050 asm volatile("invlpg (%0)" ::"r" (addr) : "memory");
1052 if (!static_cpu_has(X86_FEATURE_PTI))
1056 * Some platforms #GP if we call invpcid(type=1/2) before CR4.PCIDE=1.
1057 * Just use invalidate_user_asid() in case we are called early.
1059 if (!this_cpu_has(X86_FEATURE_INVPCID_SINGLE))
1060 invalidate_user_asid(loaded_mm_asid);
1062 invpcid_flush_one(user_pcid(loaded_mm_asid), addr);
1065 void flush_tlb_one_user(unsigned long addr)
1067 __flush_tlb_one_user(addr);
1073 STATIC_NOPV void native_flush_tlb_global(void)
1075 unsigned long cr4, flags;
1077 if (static_cpu_has(X86_FEATURE_INVPCID)) {
1079 * Using INVPCID is considerably faster than a pair of writes
1080 * to CR4 sandwiched inside an IRQ flag save/restore.
1082 * Note, this works with CR4.PCIDE=0 or 1.
1084 invpcid_flush_all();
1089 * Read-modify-write to CR4 - protect it from preemption and
1090 * from interrupts. (Use the raw variant because this code can
1091 * be called from deep inside debugging code.)
1093 raw_local_irq_save(flags);
1095 cr4 = this_cpu_read(cpu_tlbstate.cr4);
1097 native_write_cr4(cr4 ^ X86_CR4_PGE);
1098 /* write old PGE again and flush TLBs */
1099 native_write_cr4(cr4);
1101 raw_local_irq_restore(flags);
1105 * Flush the entire current user mapping
1107 STATIC_NOPV void native_flush_tlb_local(void)
1110 * Preemption or interrupts must be disabled to protect the access
1111 * to the per CPU variable and to prevent being preempted between
1112 * read_cr3() and write_cr3().
1114 WARN_ON_ONCE(preemptible());
1116 invalidate_user_asid(this_cpu_read(cpu_tlbstate.loaded_mm_asid));
1118 /* If current->mm == NULL then the read_cr3() "borrows" an mm */
1119 native_write_cr3(__native_read_cr3());
1122 void flush_tlb_local(void)
1124 __flush_tlb_local();
1130 void __flush_tlb_all(void)
1133 * This is to catch users with enabled preemption and the PGE feature
1134 * and don't trigger the warning in __native_flush_tlb().
1136 VM_WARN_ON_ONCE(preemptible());
1138 if (boot_cpu_has(X86_FEATURE_PGE)) {
1139 __flush_tlb_global();
1142 * !PGE -> !PCID (setup_pcid()), thus every flush is total.
1147 EXPORT_SYMBOL_GPL(__flush_tlb_all);
1150 * arch_tlbbatch_flush() performs a full TLB flush regardless of the active mm.
1151 * This means that the 'struct flush_tlb_info' that describes which mappings to
1152 * flush is actually fixed. We therefore set a single fixed struct and use it in
1153 * arch_tlbbatch_flush().
1155 static const struct flush_tlb_info full_flush_tlb_info = {
1158 .end = TLB_FLUSH_ALL,
1161 void arch_tlbbatch_flush(struct arch_tlbflush_unmap_batch *batch)
1163 int cpu = get_cpu();
1165 if (cpumask_test_cpu(cpu, &batch->cpumask)) {
1166 lockdep_assert_irqs_enabled();
1167 local_irq_disable();
1168 flush_tlb_func_local(&full_flush_tlb_info, TLB_LOCAL_SHOOTDOWN);
1172 if (cpumask_any_but(&batch->cpumask, cpu) < nr_cpu_ids)
1173 flush_tlb_others(&batch->cpumask, &full_flush_tlb_info);
1175 cpumask_clear(&batch->cpumask);
1181 * Blindly accessing user memory from NMI context can be dangerous
1182 * if we're in the middle of switching the current user task or
1183 * switching the loaded mm. It can also be dangerous if we
1184 * interrupted some kernel code that was temporarily using a
1187 bool nmi_uaccess_okay(void)
1189 struct mm_struct *loaded_mm = this_cpu_read(cpu_tlbstate.loaded_mm);
1190 struct mm_struct *current_mm = current->mm;
1192 VM_WARN_ON_ONCE(!loaded_mm);
1195 * The condition we want to check is
1196 * current_mm->pgd == __va(read_cr3_pa()). This may be slow, though,
1197 * if we're running in a VM with shadow paging, and nmi_uaccess_okay()
1198 * is supposed to be reasonably fast.
1200 * Instead, we check the almost equivalent but somewhat conservative
1201 * condition below, and we rely on the fact that switch_mm_irqs_off()
1202 * sets loaded_mm to LOADED_MM_SWITCHING before writing to CR3.
1204 if (loaded_mm != current_mm)
1207 VM_WARN_ON_ONCE(current_mm->pgd != __va(read_cr3_pa()));
1212 static ssize_t tlbflush_read_file(struct file *file, char __user *user_buf,
1213 size_t count, loff_t *ppos)
1218 len = sprintf(buf, "%ld\n", tlb_single_page_flush_ceiling);
1219 return simple_read_from_buffer(user_buf, count, ppos, buf, len);
1222 static ssize_t tlbflush_write_file(struct file *file,
1223 const char __user *user_buf, size_t count, loff_t *ppos)
1229 len = min(count, sizeof(buf) - 1);
1230 if (copy_from_user(buf, user_buf, len))
1234 if (kstrtoint(buf, 0, &ceiling))
1240 tlb_single_page_flush_ceiling = ceiling;
1244 static const struct file_operations fops_tlbflush = {
1245 .read = tlbflush_read_file,
1246 .write = tlbflush_write_file,
1247 .llseek = default_llseek,
1250 static int __init create_tlb_single_page_flush_ceiling(void)
1252 debugfs_create_file("tlb_single_page_flush_ceiling", S_IRUSR | S_IWUSR,
1253 arch_debugfs_dir, NULL, &fops_tlbflush);
1256 late_initcall(create_tlb_single_page_flush_ceiling);