2 * Simple NUMA memory policy for the Linux kernel.
4 * Copyright 2003,2004 Andi Kleen, SuSE Labs.
5 * (C) Copyright 2005 Christoph Lameter, Silicon Graphics, Inc.
6 * Subject to the GNU Public License, version 2.
8 * NUMA policy allows the user to give hints in which node(s) memory should
11 * Support four policies per VMA and per process:
13 * The VMA policy has priority over the process policy for a page fault.
15 * interleave Allocate memory interleaved over a set of nodes,
16 * with normal fallback if it fails.
17 * For VMA based allocations this interleaves based on the
18 * offset into the backing object or offset into the mapping
19 * for anonymous memory. For process policy an process counter
22 * bind Only allocate memory on a specific set of nodes,
24 * FIXME: memory is allocated starting with the first node
25 * to the last. It would be better if bind would truly restrict
26 * the allocation to memory nodes instead
28 * preferred Try a specific node first before normal fallback.
29 * As a special case NUMA_NO_NODE here means do the allocation
30 * on the local CPU. This is normally identical to default,
31 * but useful to set in a VMA when you have a non default
34 * default Allocate on the local node first, or when on a VMA
35 * use the process policy. This is what Linux always did
36 * in a NUMA aware kernel and still does by, ahem, default.
38 * The process policy is applied for most non interrupt memory allocations
39 * in that process' context. Interrupts ignore the policies and always
40 * try to allocate on the local CPU. The VMA policy is only applied for memory
41 * allocations for a VMA in the VM.
43 * Currently there are a few corner cases in swapping where the policy
44 * is not applied, but the majority should be handled. When process policy
45 * is used it is not remembered over swap outs/swap ins.
47 * Only the highest zone in the zone hierarchy gets policied. Allocations
48 * requesting a lower zone just use default policy. This implies that
49 * on systems with highmem kernel lowmem allocation don't get policied.
50 * Same with GFP_DMA allocations.
52 * For shmfs/tmpfs/hugetlbfs shared memory the policy is shared between
53 * all users and remembered even when nobody has memory mapped.
57 fix mmap readahead to honour policy and enable policy for any page cache
59 statistics for bigpages
60 global policy for page cache? currently it uses process policy. Requires
62 handle mremap for shared memory (currently ignored for the policy)
64 make bind policy root only? It can trigger oom much faster and the
65 kernel is not always grateful with that.
68 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
70 #include <linux/mempolicy.h>
72 #include <linux/highmem.h>
73 #include <linux/hugetlb.h>
74 #include <linux/kernel.h>
75 #include <linux/sched.h>
76 #include <linux/sched/mm.h>
77 #include <linux/sched/numa_balancing.h>
78 #include <linux/sched/task.h>
79 #include <linux/nodemask.h>
80 #include <linux/cpuset.h>
81 #include <linux/slab.h>
82 #include <linux/string.h>
83 #include <linux/export.h>
84 #include <linux/nsproxy.h>
85 #include <linux/interrupt.h>
86 #include <linux/init.h>
87 #include <linux/compat.h>
88 #include <linux/swap.h>
89 #include <linux/seq_file.h>
90 #include <linux/proc_fs.h>
91 #include <linux/migrate.h>
92 #include <linux/ksm.h>
93 #include <linux/rmap.h>
94 #include <linux/security.h>
95 #include <linux/syscalls.h>
96 #include <linux/ctype.h>
97 #include <linux/mm_inline.h>
98 #include <linux/mmu_notifier.h>
99 #include <linux/printk.h>
101 #include <asm/tlbflush.h>
102 #include <linux/uaccess.h>
104 #include "internal.h"
107 #define MPOL_MF_DISCONTIG_OK (MPOL_MF_INTERNAL << 0) /* Skip checks for continuous vmas */
108 #define MPOL_MF_INVERT (MPOL_MF_INTERNAL << 1) /* Invert check for nodemask */
110 static struct kmem_cache
*policy_cache
;
111 static struct kmem_cache
*sn_cache
;
113 /* Highest zone. An specific allocation for a zone below that is not
115 enum zone_type policy_zone
= 0;
118 * run-time system-wide default policy => local allocation
120 static struct mempolicy default_policy
= {
121 .refcnt
= ATOMIC_INIT(1), /* never free it */
122 .mode
= MPOL_PREFERRED
,
123 .flags
= MPOL_F_LOCAL
,
126 static struct mempolicy preferred_node_policy
[MAX_NUMNODES
];
128 struct mempolicy
*get_task_policy(struct task_struct
*p
)
130 struct mempolicy
*pol
= p
->mempolicy
;
136 node
= numa_node_id();
137 if (node
!= NUMA_NO_NODE
) {
138 pol
= &preferred_node_policy
[node
];
139 /* preferred_node_policy is not initialised early in boot */
144 return &default_policy
;
147 static const struct mempolicy_operations
{
148 int (*create
)(struct mempolicy
*pol
, const nodemask_t
*nodes
);
149 void (*rebind
)(struct mempolicy
*pol
, const nodemask_t
*nodes
);
150 } mpol_ops
[MPOL_MAX
];
152 static inline int mpol_store_user_nodemask(const struct mempolicy
*pol
)
154 return pol
->flags
& MPOL_MODE_FLAGS
;
157 static void mpol_relative_nodemask(nodemask_t
*ret
, const nodemask_t
*orig
,
158 const nodemask_t
*rel
)
161 nodes_fold(tmp
, *orig
, nodes_weight(*rel
));
162 nodes_onto(*ret
, tmp
, *rel
);
165 static int mpol_new_interleave(struct mempolicy
*pol
, const nodemask_t
*nodes
)
167 if (nodes_empty(*nodes
))
169 pol
->v
.nodes
= *nodes
;
173 static int mpol_new_preferred(struct mempolicy
*pol
, const nodemask_t
*nodes
)
176 pol
->flags
|= MPOL_F_LOCAL
; /* local allocation */
177 else if (nodes_empty(*nodes
))
178 return -EINVAL
; /* no allowed nodes */
180 pol
->v
.preferred_node
= first_node(*nodes
);
184 static int mpol_new_bind(struct mempolicy
*pol
, const nodemask_t
*nodes
)
186 if (nodes_empty(*nodes
))
188 pol
->v
.nodes
= *nodes
;
193 * mpol_set_nodemask is called after mpol_new() to set up the nodemask, if
194 * any, for the new policy. mpol_new() has already validated the nodes
195 * parameter with respect to the policy mode and flags. But, we need to
196 * handle an empty nodemask with MPOL_PREFERRED here.
198 * Must be called holding task's alloc_lock to protect task's mems_allowed
199 * and mempolicy. May also be called holding the mmap_semaphore for write.
201 static int mpol_set_nodemask(struct mempolicy
*pol
,
202 const nodemask_t
*nodes
, struct nodemask_scratch
*nsc
)
206 /* if mode is MPOL_DEFAULT, pol is NULL. This is right. */
210 nodes_and(nsc
->mask1
,
211 cpuset_current_mems_allowed
, node_states
[N_MEMORY
]);
214 if (pol
->mode
== MPOL_PREFERRED
&& nodes_empty(*nodes
))
215 nodes
= NULL
; /* explicit local allocation */
217 if (pol
->flags
& MPOL_F_RELATIVE_NODES
)
218 mpol_relative_nodemask(&nsc
->mask2
, nodes
, &nsc
->mask1
);
220 nodes_and(nsc
->mask2
, *nodes
, nsc
->mask1
);
222 if (mpol_store_user_nodemask(pol
))
223 pol
->w
.user_nodemask
= *nodes
;
225 pol
->w
.cpuset_mems_allowed
=
226 cpuset_current_mems_allowed
;
230 ret
= mpol_ops
[pol
->mode
].create(pol
, &nsc
->mask2
);
232 ret
= mpol_ops
[pol
->mode
].create(pol
, NULL
);
237 * This function just creates a new policy, does some check and simple
238 * initialization. You must invoke mpol_set_nodemask() to set nodes.
240 static struct mempolicy
*mpol_new(unsigned short mode
, unsigned short flags
,
243 struct mempolicy
*policy
;
245 pr_debug("setting mode %d flags %d nodes[0] %lx\n",
246 mode
, flags
, nodes
? nodes_addr(*nodes
)[0] : NUMA_NO_NODE
);
248 if (mode
== MPOL_DEFAULT
) {
249 if (nodes
&& !nodes_empty(*nodes
))
250 return ERR_PTR(-EINVAL
);
256 * MPOL_PREFERRED cannot be used with MPOL_F_STATIC_NODES or
257 * MPOL_F_RELATIVE_NODES if the nodemask is empty (local allocation).
258 * All other modes require a valid pointer to a non-empty nodemask.
260 if (mode
== MPOL_PREFERRED
) {
261 if (nodes_empty(*nodes
)) {
262 if (((flags
& MPOL_F_STATIC_NODES
) ||
263 (flags
& MPOL_F_RELATIVE_NODES
)))
264 return ERR_PTR(-EINVAL
);
266 } else if (mode
== MPOL_LOCAL
) {
267 if (!nodes_empty(*nodes
) ||
268 (flags
& MPOL_F_STATIC_NODES
) ||
269 (flags
& MPOL_F_RELATIVE_NODES
))
270 return ERR_PTR(-EINVAL
);
271 mode
= MPOL_PREFERRED
;
272 } else if (nodes_empty(*nodes
))
273 return ERR_PTR(-EINVAL
);
274 policy
= kmem_cache_alloc(policy_cache
, GFP_KERNEL
);
276 return ERR_PTR(-ENOMEM
);
277 atomic_set(&policy
->refcnt
, 1);
279 policy
->flags
= flags
;
284 /* Slow path of a mpol destructor. */
285 void __mpol_put(struct mempolicy
*p
)
287 if (!atomic_dec_and_test(&p
->refcnt
))
289 kmem_cache_free(policy_cache
, p
);
292 static void mpol_rebind_default(struct mempolicy
*pol
, const nodemask_t
*nodes
)
296 static void mpol_rebind_nodemask(struct mempolicy
*pol
, const nodemask_t
*nodes
)
300 if (pol
->flags
& MPOL_F_STATIC_NODES
)
301 nodes_and(tmp
, pol
->w
.user_nodemask
, *nodes
);
302 else if (pol
->flags
& MPOL_F_RELATIVE_NODES
)
303 mpol_relative_nodemask(&tmp
, &pol
->w
.user_nodemask
, nodes
);
305 nodes_remap(tmp
, pol
->v
.nodes
,pol
->w
.cpuset_mems_allowed
,
307 pol
->w
.cpuset_mems_allowed
= tmp
;
310 if (nodes_empty(tmp
))
316 static void mpol_rebind_preferred(struct mempolicy
*pol
,
317 const nodemask_t
*nodes
)
321 if (pol
->flags
& MPOL_F_STATIC_NODES
) {
322 int node
= first_node(pol
->w
.user_nodemask
);
324 if (node_isset(node
, *nodes
)) {
325 pol
->v
.preferred_node
= node
;
326 pol
->flags
&= ~MPOL_F_LOCAL
;
328 pol
->flags
|= MPOL_F_LOCAL
;
329 } else if (pol
->flags
& MPOL_F_RELATIVE_NODES
) {
330 mpol_relative_nodemask(&tmp
, &pol
->w
.user_nodemask
, nodes
);
331 pol
->v
.preferred_node
= first_node(tmp
);
332 } else if (!(pol
->flags
& MPOL_F_LOCAL
)) {
333 pol
->v
.preferred_node
= node_remap(pol
->v
.preferred_node
,
334 pol
->w
.cpuset_mems_allowed
,
336 pol
->w
.cpuset_mems_allowed
= *nodes
;
341 * mpol_rebind_policy - Migrate a policy to a different set of nodes
343 * Per-vma policies are protected by mmap_sem. Allocations using per-task
344 * policies are protected by task->mems_allowed_seq to prevent a premature
345 * OOM/allocation failure due to parallel nodemask modification.
347 static void mpol_rebind_policy(struct mempolicy
*pol
, const nodemask_t
*newmask
)
351 if (!mpol_store_user_nodemask(pol
) &&
352 nodes_equal(pol
->w
.cpuset_mems_allowed
, *newmask
))
355 mpol_ops
[pol
->mode
].rebind(pol
, newmask
);
359 * Wrapper for mpol_rebind_policy() that just requires task
360 * pointer, and updates task mempolicy.
362 * Called with task's alloc_lock held.
365 void mpol_rebind_task(struct task_struct
*tsk
, const nodemask_t
*new)
367 mpol_rebind_policy(tsk
->mempolicy
, new);
371 * Rebind each vma in mm to new nodemask.
373 * Call holding a reference to mm. Takes mm->mmap_sem during call.
376 void mpol_rebind_mm(struct mm_struct
*mm
, nodemask_t
*new)
378 struct vm_area_struct
*vma
;
380 down_write(&mm
->mmap_sem
);
381 for (vma
= mm
->mmap
; vma
; vma
= vma
->vm_next
)
382 mpol_rebind_policy(vma
->vm_policy
, new);
383 up_write(&mm
->mmap_sem
);
386 static const struct mempolicy_operations mpol_ops
[MPOL_MAX
] = {
388 .rebind
= mpol_rebind_default
,
390 [MPOL_INTERLEAVE
] = {
391 .create
= mpol_new_interleave
,
392 .rebind
= mpol_rebind_nodemask
,
395 .create
= mpol_new_preferred
,
396 .rebind
= mpol_rebind_preferred
,
399 .create
= mpol_new_bind
,
400 .rebind
= mpol_rebind_nodemask
,
404 static void migrate_page_add(struct page
*page
, struct list_head
*pagelist
,
405 unsigned long flags
);
408 struct list_head
*pagelist
;
411 struct vm_area_struct
*prev
;
415 * Scan through pages checking if pages follow certain conditions,
416 * and move them to the pagelist if they do.
418 static int queue_pages_pte_range(pmd_t
*pmd
, unsigned long addr
,
419 unsigned long end
, struct mm_walk
*walk
)
421 struct vm_area_struct
*vma
= walk
->vma
;
423 struct queue_pages
*qp
= walk
->private;
424 unsigned long flags
= qp
->flags
;
429 if (pmd_trans_huge(*pmd
)) {
430 ptl
= pmd_lock(walk
->mm
, pmd
);
431 if (pmd_trans_huge(*pmd
)) {
432 page
= pmd_page(*pmd
);
433 if (is_huge_zero_page(page
)) {
435 __split_huge_pmd(vma
, pmd
, addr
, false, NULL
);
440 ret
= split_huge_page(page
);
451 if (pmd_trans_unstable(pmd
))
454 pte
= pte_offset_map_lock(walk
->mm
, pmd
, addr
, &ptl
);
455 for (; addr
!= end
; pte
++, addr
+= PAGE_SIZE
) {
456 if (!pte_present(*pte
))
458 page
= vm_normal_page(vma
, addr
, *pte
);
462 * vm_normal_page() filters out zero pages, but there might
463 * still be PageReserved pages to skip, perhaps in a VDSO.
465 if (PageReserved(page
))
467 nid
= page_to_nid(page
);
468 if (node_isset(nid
, *qp
->nmask
) == !!(flags
& MPOL_MF_INVERT
))
470 if (PageTransCompound(page
)) {
472 pte_unmap_unlock(pte
, ptl
);
474 ret
= split_huge_page(page
);
477 /* Failed to split -- skip. */
479 pte
= pte_offset_map_lock(walk
->mm
, pmd
,
486 migrate_page_add(page
, qp
->pagelist
, flags
);
488 pte_unmap_unlock(pte
- 1, ptl
);
493 static int queue_pages_hugetlb(pte_t
*pte
, unsigned long hmask
,
494 unsigned long addr
, unsigned long end
,
495 struct mm_walk
*walk
)
497 #ifdef CONFIG_HUGETLB_PAGE
498 struct queue_pages
*qp
= walk
->private;
499 unsigned long flags
= qp
->flags
;
505 ptl
= huge_pte_lock(hstate_vma(walk
->vma
), walk
->mm
, pte
);
506 entry
= huge_ptep_get(pte
);
507 if (!pte_present(entry
))
509 page
= pte_page(entry
);
510 nid
= page_to_nid(page
);
511 if (node_isset(nid
, *qp
->nmask
) == !!(flags
& MPOL_MF_INVERT
))
513 /* With MPOL_MF_MOVE, we migrate only unshared hugepage. */
514 if (flags
& (MPOL_MF_MOVE_ALL
) ||
515 (flags
& MPOL_MF_MOVE
&& page_mapcount(page
) == 1))
516 isolate_huge_page(page
, qp
->pagelist
);
525 #ifdef CONFIG_NUMA_BALANCING
527 * This is used to mark a range of virtual addresses to be inaccessible.
528 * These are later cleared by a NUMA hinting fault. Depending on these
529 * faults, pages may be migrated for better NUMA placement.
531 * This is assuming that NUMA faults are handled using PROT_NONE. If
532 * an architecture makes a different choice, it will need further
533 * changes to the core.
535 unsigned long change_prot_numa(struct vm_area_struct
*vma
,
536 unsigned long addr
, unsigned long end
)
540 nr_updated
= change_protection(vma
, addr
, end
, PAGE_NONE
, 0, 1);
542 count_vm_numa_events(NUMA_PTE_UPDATES
, nr_updated
);
547 static unsigned long change_prot_numa(struct vm_area_struct
*vma
,
548 unsigned long addr
, unsigned long end
)
552 #endif /* CONFIG_NUMA_BALANCING */
554 static int queue_pages_test_walk(unsigned long start
, unsigned long end
,
555 struct mm_walk
*walk
)
557 struct vm_area_struct
*vma
= walk
->vma
;
558 struct queue_pages
*qp
= walk
->private;
559 unsigned long endvma
= vma
->vm_end
;
560 unsigned long flags
= qp
->flags
;
562 if (!vma_migratable(vma
))
567 if (vma
->vm_start
> start
)
568 start
= vma
->vm_start
;
570 if (!(flags
& MPOL_MF_DISCONTIG_OK
)) {
571 if (!vma
->vm_next
&& vma
->vm_end
< end
)
573 if (qp
->prev
&& qp
->prev
->vm_end
< vma
->vm_start
)
579 if (flags
& MPOL_MF_LAZY
) {
580 /* Similar to task_numa_work, skip inaccessible VMAs */
581 if (!is_vm_hugetlb_page(vma
) &&
582 (vma
->vm_flags
& (VM_READ
| VM_EXEC
| VM_WRITE
)) &&
583 !(vma
->vm_flags
& VM_MIXEDMAP
))
584 change_prot_numa(vma
, start
, endvma
);
588 /* queue pages from current vma */
589 if (flags
& (MPOL_MF_MOVE
| MPOL_MF_MOVE_ALL
))
595 * Walk through page tables and collect pages to be migrated.
597 * If pages found in a given range are on a set of nodes (determined by
598 * @nodes and @flags,) it's isolated and queued to the pagelist which is
599 * passed via @private.)
602 queue_pages_range(struct mm_struct
*mm
, unsigned long start
, unsigned long end
,
603 nodemask_t
*nodes
, unsigned long flags
,
604 struct list_head
*pagelist
)
606 struct queue_pages qp
= {
607 .pagelist
= pagelist
,
612 struct mm_walk queue_pages_walk
= {
613 .hugetlb_entry
= queue_pages_hugetlb
,
614 .pmd_entry
= queue_pages_pte_range
,
615 .test_walk
= queue_pages_test_walk
,
620 return walk_page_range(start
, end
, &queue_pages_walk
);
624 * Apply policy to a single VMA
625 * This must be called with the mmap_sem held for writing.
627 static int vma_replace_policy(struct vm_area_struct
*vma
,
628 struct mempolicy
*pol
)
631 struct mempolicy
*old
;
632 struct mempolicy
*new;
634 pr_debug("vma %lx-%lx/%lx vm_ops %p vm_file %p set_policy %p\n",
635 vma
->vm_start
, vma
->vm_end
, vma
->vm_pgoff
,
636 vma
->vm_ops
, vma
->vm_file
,
637 vma
->vm_ops
? vma
->vm_ops
->set_policy
: NULL
);
643 if (vma
->vm_ops
&& vma
->vm_ops
->set_policy
) {
644 err
= vma
->vm_ops
->set_policy(vma
, new);
649 old
= vma
->vm_policy
;
650 vma
->vm_policy
= new; /* protected by mmap_sem */
659 /* Step 2: apply policy to a range and do splits. */
660 static int mbind_range(struct mm_struct
*mm
, unsigned long start
,
661 unsigned long end
, struct mempolicy
*new_pol
)
663 struct vm_area_struct
*next
;
664 struct vm_area_struct
*prev
;
665 struct vm_area_struct
*vma
;
668 unsigned long vmstart
;
671 vma
= find_vma(mm
, start
);
672 if (!vma
|| vma
->vm_start
> start
)
676 if (start
> vma
->vm_start
)
679 for (; vma
&& vma
->vm_start
< end
; prev
= vma
, vma
= next
) {
681 vmstart
= max(start
, vma
->vm_start
);
682 vmend
= min(end
, vma
->vm_end
);
684 if (mpol_equal(vma_policy(vma
), new_pol
))
687 pgoff
= vma
->vm_pgoff
+
688 ((vmstart
- vma
->vm_start
) >> PAGE_SHIFT
);
689 prev
= vma_merge(mm
, prev
, vmstart
, vmend
, vma
->vm_flags
,
690 vma
->anon_vma
, vma
->vm_file
, pgoff
,
691 new_pol
, vma
->vm_userfaultfd_ctx
);
695 if (mpol_equal(vma_policy(vma
), new_pol
))
697 /* vma_merge() joined vma && vma->next, case 8 */
700 if (vma
->vm_start
!= vmstart
) {
701 err
= split_vma(vma
->vm_mm
, vma
, vmstart
, 1);
705 if (vma
->vm_end
!= vmend
) {
706 err
= split_vma(vma
->vm_mm
, vma
, vmend
, 0);
711 err
= vma_replace_policy(vma
, new_pol
);
720 /* Set the process memory policy */
721 static long do_set_mempolicy(unsigned short mode
, unsigned short flags
,
724 struct mempolicy
*new, *old
;
725 NODEMASK_SCRATCH(scratch
);
731 new = mpol_new(mode
, flags
, nodes
);
738 ret
= mpol_set_nodemask(new, nodes
, scratch
);
740 task_unlock(current
);
744 old
= current
->mempolicy
;
745 current
->mempolicy
= new;
746 if (new && new->mode
== MPOL_INTERLEAVE
)
747 current
->il_prev
= MAX_NUMNODES
-1;
748 task_unlock(current
);
752 NODEMASK_SCRATCH_FREE(scratch
);
757 * Return nodemask for policy for get_mempolicy() query
759 * Called with task's alloc_lock held
761 static void get_policy_nodemask(struct mempolicy
*p
, nodemask_t
*nodes
)
764 if (p
== &default_policy
)
770 case MPOL_INTERLEAVE
:
774 if (!(p
->flags
& MPOL_F_LOCAL
))
775 node_set(p
->v
.preferred_node
, *nodes
);
776 /* else return empty node mask for local allocation */
783 static int lookup_node(unsigned long addr
)
788 err
= get_user_pages(addr
& PAGE_MASK
, 1, 0, &p
, NULL
);
790 err
= page_to_nid(p
);
796 /* Retrieve NUMA policy */
797 static long do_get_mempolicy(int *policy
, nodemask_t
*nmask
,
798 unsigned long addr
, unsigned long flags
)
801 struct mm_struct
*mm
= current
->mm
;
802 struct vm_area_struct
*vma
= NULL
;
803 struct mempolicy
*pol
= current
->mempolicy
;
806 ~(unsigned long)(MPOL_F_NODE
|MPOL_F_ADDR
|MPOL_F_MEMS_ALLOWED
))
809 if (flags
& MPOL_F_MEMS_ALLOWED
) {
810 if (flags
& (MPOL_F_NODE
|MPOL_F_ADDR
))
812 *policy
= 0; /* just so it's initialized */
814 *nmask
= cpuset_current_mems_allowed
;
815 task_unlock(current
);
819 if (flags
& MPOL_F_ADDR
) {
821 * Do NOT fall back to task policy if the
822 * vma/shared policy at addr is NULL. We
823 * want to return MPOL_DEFAULT in this case.
825 down_read(&mm
->mmap_sem
);
826 vma
= find_vma_intersection(mm
, addr
, addr
+1);
828 up_read(&mm
->mmap_sem
);
831 if (vma
->vm_ops
&& vma
->vm_ops
->get_policy
)
832 pol
= vma
->vm_ops
->get_policy(vma
, addr
);
834 pol
= vma
->vm_policy
;
839 pol
= &default_policy
; /* indicates default behavior */
841 if (flags
& MPOL_F_NODE
) {
842 if (flags
& MPOL_F_ADDR
) {
843 err
= lookup_node(addr
);
847 } else if (pol
== current
->mempolicy
&&
848 pol
->mode
== MPOL_INTERLEAVE
) {
849 *policy
= next_node_in(current
->il_prev
, pol
->v
.nodes
);
855 *policy
= pol
== &default_policy
? MPOL_DEFAULT
:
858 * Internal mempolicy flags must be masked off before exposing
859 * the policy to userspace.
861 *policy
|= (pol
->flags
& MPOL_MODE_FLAGS
);
866 if (mpol_store_user_nodemask(pol
)) {
867 *nmask
= pol
->w
.user_nodemask
;
870 get_policy_nodemask(pol
, nmask
);
871 task_unlock(current
);
878 up_read(¤t
->mm
->mmap_sem
);
882 #ifdef CONFIG_MIGRATION
886 static void migrate_page_add(struct page
*page
, struct list_head
*pagelist
,
890 * Avoid migrating a page that is shared with others.
892 if ((flags
& MPOL_MF_MOVE_ALL
) || page_mapcount(page
) == 1) {
893 if (!isolate_lru_page(page
)) {
894 list_add_tail(&page
->lru
, pagelist
);
895 inc_node_page_state(page
, NR_ISOLATED_ANON
+
896 page_is_file_cache(page
));
901 static struct page
*new_node_page(struct page
*page
, unsigned long node
, int **x
)
904 return alloc_huge_page_node(page_hstate(compound_head(page
)),
907 return __alloc_pages_node(node
, GFP_HIGHUSER_MOVABLE
|
912 * Migrate pages from one node to a target node.
913 * Returns error or the number of pages not migrated.
915 static int migrate_to_node(struct mm_struct
*mm
, int source
, int dest
,
923 node_set(source
, nmask
);
926 * This does not "check" the range but isolates all pages that
927 * need migration. Between passing in the full user address
928 * space range and MPOL_MF_DISCONTIG_OK, this call can not fail.
930 VM_BUG_ON(!(flags
& (MPOL_MF_MOVE
| MPOL_MF_MOVE_ALL
)));
931 queue_pages_range(mm
, mm
->mmap
->vm_start
, mm
->task_size
, &nmask
,
932 flags
| MPOL_MF_DISCONTIG_OK
, &pagelist
);
934 if (!list_empty(&pagelist
)) {
935 err
= migrate_pages(&pagelist
, new_node_page
, NULL
, dest
,
936 MIGRATE_SYNC
, MR_SYSCALL
);
938 putback_movable_pages(&pagelist
);
945 * Move pages between the two nodesets so as to preserve the physical
946 * layout as much as possible.
948 * Returns the number of page that could not be moved.
950 int do_migrate_pages(struct mm_struct
*mm
, const nodemask_t
*from
,
951 const nodemask_t
*to
, int flags
)
957 err
= migrate_prep();
961 down_read(&mm
->mmap_sem
);
964 * Find a 'source' bit set in 'tmp' whose corresponding 'dest'
965 * bit in 'to' is not also set in 'tmp'. Clear the found 'source'
966 * bit in 'tmp', and return that <source, dest> pair for migration.
967 * The pair of nodemasks 'to' and 'from' define the map.
969 * If no pair of bits is found that way, fallback to picking some
970 * pair of 'source' and 'dest' bits that are not the same. If the
971 * 'source' and 'dest' bits are the same, this represents a node
972 * that will be migrating to itself, so no pages need move.
974 * If no bits are left in 'tmp', or if all remaining bits left
975 * in 'tmp' correspond to the same bit in 'to', return false
976 * (nothing left to migrate).
978 * This lets us pick a pair of nodes to migrate between, such that
979 * if possible the dest node is not already occupied by some other
980 * source node, minimizing the risk of overloading the memory on a
981 * node that would happen if we migrated incoming memory to a node
982 * before migrating outgoing memory source that same node.
984 * A single scan of tmp is sufficient. As we go, we remember the
985 * most recent <s, d> pair that moved (s != d). If we find a pair
986 * that not only moved, but what's better, moved to an empty slot
987 * (d is not set in tmp), then we break out then, with that pair.
988 * Otherwise when we finish scanning from_tmp, we at least have the
989 * most recent <s, d> pair that moved. If we get all the way through
990 * the scan of tmp without finding any node that moved, much less
991 * moved to an empty node, then there is nothing left worth migrating.
995 while (!nodes_empty(tmp
)) {
997 int source
= NUMA_NO_NODE
;
1000 for_each_node_mask(s
, tmp
) {
1003 * do_migrate_pages() tries to maintain the relative
1004 * node relationship of the pages established between
1005 * threads and memory areas.
1007 * However if the number of source nodes is not equal to
1008 * the number of destination nodes we can not preserve
1009 * this node relative relationship. In that case, skip
1010 * copying memory from a node that is in the destination
1013 * Example: [2,3,4] -> [3,4,5] moves everything.
1014 * [0-7] - > [3,4,5] moves only 0,1,2,6,7.
1017 if ((nodes_weight(*from
) != nodes_weight(*to
)) &&
1018 (node_isset(s
, *to
)))
1021 d
= node_remap(s
, *from
, *to
);
1025 source
= s
; /* Node moved. Memorize */
1028 /* dest not in remaining from nodes? */
1029 if (!node_isset(dest
, tmp
))
1032 if (source
== NUMA_NO_NODE
)
1035 node_clear(source
, tmp
);
1036 err
= migrate_to_node(mm
, source
, dest
, flags
);
1042 up_read(&mm
->mmap_sem
);
1050 * Allocate a new page for page migration based on vma policy.
1051 * Start by assuming the page is mapped by the same vma as contains @start.
1052 * Search forward from there, if not. N.B., this assumes that the
1053 * list of pages handed to migrate_pages()--which is how we get here--
1054 * is in virtual address order.
1056 static struct page
*new_page(struct page
*page
, unsigned long start
, int **x
)
1058 struct vm_area_struct
*vma
;
1059 unsigned long uninitialized_var(address
);
1061 vma
= find_vma(current
->mm
, start
);
1063 address
= page_address_in_vma(page
, vma
);
1064 if (address
!= -EFAULT
)
1069 if (PageHuge(page
)) {
1071 return alloc_huge_page_noerr(vma
, address
, 1);
1074 * if !vma, alloc_page_vma() will use task or system default policy
1076 return alloc_page_vma(GFP_HIGHUSER_MOVABLE
| __GFP_RETRY_MAYFAIL
,
1081 static void migrate_page_add(struct page
*page
, struct list_head
*pagelist
,
1082 unsigned long flags
)
1086 int do_migrate_pages(struct mm_struct
*mm
, const nodemask_t
*from
,
1087 const nodemask_t
*to
, int flags
)
1092 static struct page
*new_page(struct page
*page
, unsigned long start
, int **x
)
1098 static long do_mbind(unsigned long start
, unsigned long len
,
1099 unsigned short mode
, unsigned short mode_flags
,
1100 nodemask_t
*nmask
, unsigned long flags
)
1102 struct mm_struct
*mm
= current
->mm
;
1103 struct mempolicy
*new;
1106 LIST_HEAD(pagelist
);
1108 if (flags
& ~(unsigned long)MPOL_MF_VALID
)
1110 if ((flags
& MPOL_MF_MOVE_ALL
) && !capable(CAP_SYS_NICE
))
1113 if (start
& ~PAGE_MASK
)
1116 if (mode
== MPOL_DEFAULT
)
1117 flags
&= ~MPOL_MF_STRICT
;
1119 len
= (len
+ PAGE_SIZE
- 1) & PAGE_MASK
;
1127 new = mpol_new(mode
, mode_flags
, nmask
);
1129 return PTR_ERR(new);
1131 if (flags
& MPOL_MF_LAZY
)
1132 new->flags
|= MPOL_F_MOF
;
1135 * If we are using the default policy then operation
1136 * on discontinuous address spaces is okay after all
1139 flags
|= MPOL_MF_DISCONTIG_OK
;
1141 pr_debug("mbind %lx-%lx mode:%d flags:%d nodes:%lx\n",
1142 start
, start
+ len
, mode
, mode_flags
,
1143 nmask
? nodes_addr(*nmask
)[0] : NUMA_NO_NODE
);
1145 if (flags
& (MPOL_MF_MOVE
| MPOL_MF_MOVE_ALL
)) {
1147 err
= migrate_prep();
1152 NODEMASK_SCRATCH(scratch
);
1154 down_write(&mm
->mmap_sem
);
1156 err
= mpol_set_nodemask(new, nmask
, scratch
);
1157 task_unlock(current
);
1159 up_write(&mm
->mmap_sem
);
1162 NODEMASK_SCRATCH_FREE(scratch
);
1167 err
= queue_pages_range(mm
, start
, end
, nmask
,
1168 flags
| MPOL_MF_INVERT
, &pagelist
);
1170 err
= mbind_range(mm
, start
, end
, new);
1175 if (!list_empty(&pagelist
)) {
1176 WARN_ON_ONCE(flags
& MPOL_MF_LAZY
);
1177 nr_failed
= migrate_pages(&pagelist
, new_page
, NULL
,
1178 start
, MIGRATE_SYNC
, MR_MEMPOLICY_MBIND
);
1180 putback_movable_pages(&pagelist
);
1183 if (nr_failed
&& (flags
& MPOL_MF_STRICT
))
1186 putback_movable_pages(&pagelist
);
1188 up_write(&mm
->mmap_sem
);
1195 * User space interface with variable sized bitmaps for nodelists.
1198 /* Copy a node mask from user space. */
1199 static int get_nodes(nodemask_t
*nodes
, const unsigned long __user
*nmask
,
1200 unsigned long maxnode
)
1203 unsigned long nlongs
;
1204 unsigned long endmask
;
1207 nodes_clear(*nodes
);
1208 if (maxnode
== 0 || !nmask
)
1210 if (maxnode
> PAGE_SIZE
*BITS_PER_BYTE
)
1213 nlongs
= BITS_TO_LONGS(maxnode
);
1214 if ((maxnode
% BITS_PER_LONG
) == 0)
1217 endmask
= (1UL << (maxnode
% BITS_PER_LONG
)) - 1;
1219 /* When the user specified more nodes than supported just check
1220 if the non supported part is all zero. */
1221 if (nlongs
> BITS_TO_LONGS(MAX_NUMNODES
)) {
1222 if (nlongs
> PAGE_SIZE
/sizeof(long))
1224 for (k
= BITS_TO_LONGS(MAX_NUMNODES
); k
< nlongs
; k
++) {
1226 if (get_user(t
, nmask
+ k
))
1228 if (k
== nlongs
- 1) {
1234 nlongs
= BITS_TO_LONGS(MAX_NUMNODES
);
1238 if (copy_from_user(nodes_addr(*nodes
), nmask
, nlongs
*sizeof(unsigned long)))
1240 nodes_addr(*nodes
)[nlongs
-1] &= endmask
;
1244 /* Copy a kernel node mask to user space */
1245 static int copy_nodes_to_user(unsigned long __user
*mask
, unsigned long maxnode
,
1248 unsigned long copy
= ALIGN(maxnode
-1, 64) / 8;
1249 const int nbytes
= BITS_TO_LONGS(MAX_NUMNODES
) * sizeof(long);
1251 if (copy
> nbytes
) {
1252 if (copy
> PAGE_SIZE
)
1254 if (clear_user((char __user
*)mask
+ nbytes
, copy
- nbytes
))
1258 return copy_to_user(mask
, nodes_addr(*nodes
), copy
) ? -EFAULT
: 0;
1261 SYSCALL_DEFINE6(mbind
, unsigned long, start
, unsigned long, len
,
1262 unsigned long, mode
, const unsigned long __user
*, nmask
,
1263 unsigned long, maxnode
, unsigned, flags
)
1267 unsigned short mode_flags
;
1269 mode_flags
= mode
& MPOL_MODE_FLAGS
;
1270 mode
&= ~MPOL_MODE_FLAGS
;
1271 if (mode
>= MPOL_MAX
)
1273 if ((mode_flags
& MPOL_F_STATIC_NODES
) &&
1274 (mode_flags
& MPOL_F_RELATIVE_NODES
))
1276 err
= get_nodes(&nodes
, nmask
, maxnode
);
1279 return do_mbind(start
, len
, mode
, mode_flags
, &nodes
, flags
);
1282 /* Set the process memory policy */
1283 SYSCALL_DEFINE3(set_mempolicy
, int, mode
, const unsigned long __user
*, nmask
,
1284 unsigned long, maxnode
)
1288 unsigned short flags
;
1290 flags
= mode
& MPOL_MODE_FLAGS
;
1291 mode
&= ~MPOL_MODE_FLAGS
;
1292 if ((unsigned int)mode
>= MPOL_MAX
)
1294 if ((flags
& MPOL_F_STATIC_NODES
) && (flags
& MPOL_F_RELATIVE_NODES
))
1296 err
= get_nodes(&nodes
, nmask
, maxnode
);
1299 return do_set_mempolicy(mode
, flags
, &nodes
);
1302 SYSCALL_DEFINE4(migrate_pages
, pid_t
, pid
, unsigned long, maxnode
,
1303 const unsigned long __user
*, old_nodes
,
1304 const unsigned long __user
*, new_nodes
)
1306 const struct cred
*cred
= current_cred(), *tcred
;
1307 struct mm_struct
*mm
= NULL
;
1308 struct task_struct
*task
;
1309 nodemask_t task_nodes
;
1313 NODEMASK_SCRATCH(scratch
);
1318 old
= &scratch
->mask1
;
1319 new = &scratch
->mask2
;
1321 err
= get_nodes(old
, old_nodes
, maxnode
);
1325 err
= get_nodes(new, new_nodes
, maxnode
);
1329 /* Find the mm_struct */
1331 task
= pid
? find_task_by_vpid(pid
) : current
;
1337 get_task_struct(task
);
1342 * Check if this process has the right to modify the specified
1343 * process. The right exists if the process has administrative
1344 * capabilities, superuser privileges or the same
1345 * userid as the target process.
1347 tcred
= __task_cred(task
);
1348 if (!uid_eq(cred
->euid
, tcred
->suid
) && !uid_eq(cred
->euid
, tcred
->uid
) &&
1349 !uid_eq(cred
->uid
, tcred
->suid
) && !uid_eq(cred
->uid
, tcred
->uid
) &&
1350 !capable(CAP_SYS_NICE
)) {
1357 task_nodes
= cpuset_mems_allowed(task
);
1358 /* Is the user allowed to access the target nodes? */
1359 if (!nodes_subset(*new, task_nodes
) && !capable(CAP_SYS_NICE
)) {
1364 if (!nodes_subset(*new, node_states
[N_MEMORY
])) {
1369 err
= security_task_movememory(task
);
1373 mm
= get_task_mm(task
);
1374 put_task_struct(task
);
1381 err
= do_migrate_pages(mm
, old
, new,
1382 capable(CAP_SYS_NICE
) ? MPOL_MF_MOVE_ALL
: MPOL_MF_MOVE
);
1386 NODEMASK_SCRATCH_FREE(scratch
);
1391 put_task_struct(task
);
1397 /* Retrieve NUMA policy */
1398 SYSCALL_DEFINE5(get_mempolicy
, int __user
*, policy
,
1399 unsigned long __user
*, nmask
, unsigned long, maxnode
,
1400 unsigned long, addr
, unsigned long, flags
)
1403 int uninitialized_var(pval
);
1406 if (nmask
!= NULL
&& maxnode
< MAX_NUMNODES
)
1409 err
= do_get_mempolicy(&pval
, &nodes
, addr
, flags
);
1414 if (policy
&& put_user(pval
, policy
))
1418 err
= copy_nodes_to_user(nmask
, maxnode
, &nodes
);
1423 #ifdef CONFIG_COMPAT
1425 COMPAT_SYSCALL_DEFINE5(get_mempolicy
, int __user
*, policy
,
1426 compat_ulong_t __user
*, nmask
,
1427 compat_ulong_t
, maxnode
,
1428 compat_ulong_t
, addr
, compat_ulong_t
, flags
)
1431 unsigned long __user
*nm
= NULL
;
1432 unsigned long nr_bits
, alloc_size
;
1433 DECLARE_BITMAP(bm
, MAX_NUMNODES
);
1435 nr_bits
= min_t(unsigned long, maxnode
-1, MAX_NUMNODES
);
1436 alloc_size
= ALIGN(nr_bits
, BITS_PER_LONG
) / 8;
1439 nm
= compat_alloc_user_space(alloc_size
);
1441 err
= sys_get_mempolicy(policy
, nm
, nr_bits
+1, addr
, flags
);
1443 if (!err
&& nmask
) {
1444 unsigned long copy_size
;
1445 copy_size
= min_t(unsigned long, sizeof(bm
), alloc_size
);
1446 err
= copy_from_user(bm
, nm
, copy_size
);
1447 /* ensure entire bitmap is zeroed */
1448 err
|= clear_user(nmask
, ALIGN(maxnode
-1, 8) / 8);
1449 err
|= compat_put_bitmap(nmask
, bm
, nr_bits
);
1455 COMPAT_SYSCALL_DEFINE3(set_mempolicy
, int, mode
, compat_ulong_t __user
*, nmask
,
1456 compat_ulong_t
, maxnode
)
1458 unsigned long __user
*nm
= NULL
;
1459 unsigned long nr_bits
, alloc_size
;
1460 DECLARE_BITMAP(bm
, MAX_NUMNODES
);
1462 nr_bits
= min_t(unsigned long, maxnode
-1, MAX_NUMNODES
);
1463 alloc_size
= ALIGN(nr_bits
, BITS_PER_LONG
) / 8;
1466 if (compat_get_bitmap(bm
, nmask
, nr_bits
))
1468 nm
= compat_alloc_user_space(alloc_size
);
1469 if (copy_to_user(nm
, bm
, alloc_size
))
1473 return sys_set_mempolicy(mode
, nm
, nr_bits
+1);
1476 COMPAT_SYSCALL_DEFINE6(mbind
, compat_ulong_t
, start
, compat_ulong_t
, len
,
1477 compat_ulong_t
, mode
, compat_ulong_t __user
*, nmask
,
1478 compat_ulong_t
, maxnode
, compat_ulong_t
, flags
)
1480 unsigned long __user
*nm
= NULL
;
1481 unsigned long nr_bits
, alloc_size
;
1484 nr_bits
= min_t(unsigned long, maxnode
-1, MAX_NUMNODES
);
1485 alloc_size
= ALIGN(nr_bits
, BITS_PER_LONG
) / 8;
1488 if (compat_get_bitmap(nodes_addr(bm
), nmask
, nr_bits
))
1490 nm
= compat_alloc_user_space(alloc_size
);
1491 if (copy_to_user(nm
, nodes_addr(bm
), alloc_size
))
1495 return sys_mbind(start
, len
, mode
, nm
, nr_bits
+1, flags
);
1500 struct mempolicy
*__get_vma_policy(struct vm_area_struct
*vma
,
1503 struct mempolicy
*pol
= NULL
;
1506 if (vma
->vm_ops
&& vma
->vm_ops
->get_policy
) {
1507 pol
= vma
->vm_ops
->get_policy(vma
, addr
);
1508 } else if (vma
->vm_policy
) {
1509 pol
= vma
->vm_policy
;
1512 * shmem_alloc_page() passes MPOL_F_SHARED policy with
1513 * a pseudo vma whose vma->vm_ops=NULL. Take a reference
1514 * count on these policies which will be dropped by
1515 * mpol_cond_put() later
1517 if (mpol_needs_cond_ref(pol
))
1526 * get_vma_policy(@vma, @addr)
1527 * @vma: virtual memory area whose policy is sought
1528 * @addr: address in @vma for shared policy lookup
1530 * Returns effective policy for a VMA at specified address.
1531 * Falls back to current->mempolicy or system default policy, as necessary.
1532 * Shared policies [those marked as MPOL_F_SHARED] require an extra reference
1533 * count--added by the get_policy() vm_op, as appropriate--to protect against
1534 * freeing by another task. It is the caller's responsibility to free the
1535 * extra reference for shared policies.
1537 static struct mempolicy
*get_vma_policy(struct vm_area_struct
*vma
,
1540 struct mempolicy
*pol
= __get_vma_policy(vma
, addr
);
1543 pol
= get_task_policy(current
);
1548 bool vma_policy_mof(struct vm_area_struct
*vma
)
1550 struct mempolicy
*pol
;
1552 if (vma
->vm_ops
&& vma
->vm_ops
->get_policy
) {
1555 pol
= vma
->vm_ops
->get_policy(vma
, vma
->vm_start
);
1556 if (pol
&& (pol
->flags
& MPOL_F_MOF
))
1563 pol
= vma
->vm_policy
;
1565 pol
= get_task_policy(current
);
1567 return pol
->flags
& MPOL_F_MOF
;
1570 static int apply_policy_zone(struct mempolicy
*policy
, enum zone_type zone
)
1572 enum zone_type dynamic_policy_zone
= policy_zone
;
1574 BUG_ON(dynamic_policy_zone
== ZONE_MOVABLE
);
1577 * if policy->v.nodes has movable memory only,
1578 * we apply policy when gfp_zone(gfp) = ZONE_MOVABLE only.
1580 * policy->v.nodes is intersect with node_states[N_MEMORY].
1581 * so if the following test faile, it implies
1582 * policy->v.nodes has movable memory only.
1584 if (!nodes_intersects(policy
->v
.nodes
, node_states
[N_HIGH_MEMORY
]))
1585 dynamic_policy_zone
= ZONE_MOVABLE
;
1587 return zone
>= dynamic_policy_zone
;
1591 * Return a nodemask representing a mempolicy for filtering nodes for
1594 static nodemask_t
*policy_nodemask(gfp_t gfp
, struct mempolicy
*policy
)
1596 /* Lower zones don't get a nodemask applied for MPOL_BIND */
1597 if (unlikely(policy
->mode
== MPOL_BIND
) &&
1598 apply_policy_zone(policy
, gfp_zone(gfp
)) &&
1599 cpuset_nodemask_valid_mems_allowed(&policy
->v
.nodes
))
1600 return &policy
->v
.nodes
;
1605 /* Return the node id preferred by the given mempolicy, or the given id */
1606 static int policy_node(gfp_t gfp
, struct mempolicy
*policy
,
1609 if (policy
->mode
== MPOL_PREFERRED
&& !(policy
->flags
& MPOL_F_LOCAL
))
1610 nd
= policy
->v
.preferred_node
;
1613 * __GFP_THISNODE shouldn't even be used with the bind policy
1614 * because we might easily break the expectation to stay on the
1615 * requested node and not break the policy.
1617 WARN_ON_ONCE(policy
->mode
== MPOL_BIND
&& (gfp
& __GFP_THISNODE
));
1623 /* Do dynamic interleaving for a process */
1624 static unsigned interleave_nodes(struct mempolicy
*policy
)
1627 struct task_struct
*me
= current
;
1629 next
= next_node_in(me
->il_prev
, policy
->v
.nodes
);
1630 if (next
< MAX_NUMNODES
)
1636 * Depending on the memory policy provide a node from which to allocate the
1639 unsigned int mempolicy_slab_node(void)
1641 struct mempolicy
*policy
;
1642 int node
= numa_mem_id();
1647 policy
= current
->mempolicy
;
1648 if (!policy
|| policy
->flags
& MPOL_F_LOCAL
)
1651 switch (policy
->mode
) {
1652 case MPOL_PREFERRED
:
1654 * handled MPOL_F_LOCAL above
1656 return policy
->v
.preferred_node
;
1658 case MPOL_INTERLEAVE
:
1659 return interleave_nodes(policy
);
1665 * Follow bind policy behavior and start allocation at the
1668 struct zonelist
*zonelist
;
1669 enum zone_type highest_zoneidx
= gfp_zone(GFP_KERNEL
);
1670 zonelist
= &NODE_DATA(node
)->node_zonelists
[ZONELIST_FALLBACK
];
1671 z
= first_zones_zonelist(zonelist
, highest_zoneidx
,
1673 return z
->zone
? z
->zone
->node
: node
;
1682 * Do static interleaving for a VMA with known offset @n. Returns the n'th
1683 * node in pol->v.nodes (starting from n=0), wrapping around if n exceeds the
1684 * number of present nodes.
1686 static unsigned offset_il_node(struct mempolicy
*pol
,
1687 struct vm_area_struct
*vma
, unsigned long n
)
1689 unsigned nnodes
= nodes_weight(pol
->v
.nodes
);
1695 return numa_node_id();
1696 target
= (unsigned int)n
% nnodes
;
1697 nid
= first_node(pol
->v
.nodes
);
1698 for (i
= 0; i
< target
; i
++)
1699 nid
= next_node(nid
, pol
->v
.nodes
);
1703 /* Determine a node number for interleave */
1704 static inline unsigned interleave_nid(struct mempolicy
*pol
,
1705 struct vm_area_struct
*vma
, unsigned long addr
, int shift
)
1711 * for small pages, there is no difference between
1712 * shift and PAGE_SHIFT, so the bit-shift is safe.
1713 * for huge pages, since vm_pgoff is in units of small
1714 * pages, we need to shift off the always 0 bits to get
1717 BUG_ON(shift
< PAGE_SHIFT
);
1718 off
= vma
->vm_pgoff
>> (shift
- PAGE_SHIFT
);
1719 off
+= (addr
- vma
->vm_start
) >> shift
;
1720 return offset_il_node(pol
, vma
, off
);
1722 return interleave_nodes(pol
);
1725 #ifdef CONFIG_HUGETLBFS
1727 * huge_node(@vma, @addr, @gfp_flags, @mpol)
1728 * @vma: virtual memory area whose policy is sought
1729 * @addr: address in @vma for shared policy lookup and interleave policy
1730 * @gfp_flags: for requested zone
1731 * @mpol: pointer to mempolicy pointer for reference counted mempolicy
1732 * @nodemask: pointer to nodemask pointer for MPOL_BIND nodemask
1734 * Returns a nid suitable for a huge page allocation and a pointer
1735 * to the struct mempolicy for conditional unref after allocation.
1736 * If the effective policy is 'BIND, returns a pointer to the mempolicy's
1737 * @nodemask for filtering the zonelist.
1739 * Must be protected by read_mems_allowed_begin()
1741 int huge_node(struct vm_area_struct
*vma
, unsigned long addr
, gfp_t gfp_flags
,
1742 struct mempolicy
**mpol
, nodemask_t
**nodemask
)
1746 *mpol
= get_vma_policy(vma
, addr
);
1747 *nodemask
= NULL
; /* assume !MPOL_BIND */
1749 if (unlikely((*mpol
)->mode
== MPOL_INTERLEAVE
)) {
1750 nid
= interleave_nid(*mpol
, vma
, addr
,
1751 huge_page_shift(hstate_vma(vma
)));
1753 nid
= policy_node(gfp_flags
, *mpol
, numa_node_id());
1754 if ((*mpol
)->mode
== MPOL_BIND
)
1755 *nodemask
= &(*mpol
)->v
.nodes
;
1761 * init_nodemask_of_mempolicy
1763 * If the current task's mempolicy is "default" [NULL], return 'false'
1764 * to indicate default policy. Otherwise, extract the policy nodemask
1765 * for 'bind' or 'interleave' policy into the argument nodemask, or
1766 * initialize the argument nodemask to contain the single node for
1767 * 'preferred' or 'local' policy and return 'true' to indicate presence
1768 * of non-default mempolicy.
1770 * We don't bother with reference counting the mempolicy [mpol_get/put]
1771 * because the current task is examining it's own mempolicy and a task's
1772 * mempolicy is only ever changed by the task itself.
1774 * N.B., it is the caller's responsibility to free a returned nodemask.
1776 bool init_nodemask_of_mempolicy(nodemask_t
*mask
)
1778 struct mempolicy
*mempolicy
;
1781 if (!(mask
&& current
->mempolicy
))
1785 mempolicy
= current
->mempolicy
;
1786 switch (mempolicy
->mode
) {
1787 case MPOL_PREFERRED
:
1788 if (mempolicy
->flags
& MPOL_F_LOCAL
)
1789 nid
= numa_node_id();
1791 nid
= mempolicy
->v
.preferred_node
;
1792 init_nodemask_of_node(mask
, nid
);
1797 case MPOL_INTERLEAVE
:
1798 *mask
= mempolicy
->v
.nodes
;
1804 task_unlock(current
);
1811 * mempolicy_nodemask_intersects
1813 * If tsk's mempolicy is "default" [NULL], return 'true' to indicate default
1814 * policy. Otherwise, check for intersection between mask and the policy
1815 * nodemask for 'bind' or 'interleave' policy. For 'perferred' or 'local'
1816 * policy, always return true since it may allocate elsewhere on fallback.
1818 * Takes task_lock(tsk) to prevent freeing of its mempolicy.
1820 bool mempolicy_nodemask_intersects(struct task_struct
*tsk
,
1821 const nodemask_t
*mask
)
1823 struct mempolicy
*mempolicy
;
1829 mempolicy
= tsk
->mempolicy
;
1833 switch (mempolicy
->mode
) {
1834 case MPOL_PREFERRED
:
1836 * MPOL_PREFERRED and MPOL_F_LOCAL are only preferred nodes to
1837 * allocate from, they may fallback to other nodes when oom.
1838 * Thus, it's possible for tsk to have allocated memory from
1843 case MPOL_INTERLEAVE
:
1844 ret
= nodes_intersects(mempolicy
->v
.nodes
, *mask
);
1854 /* Allocate a page in interleaved policy.
1855 Own path because it needs to do special accounting. */
1856 static struct page
*alloc_page_interleave(gfp_t gfp
, unsigned order
,
1861 page
= __alloc_pages(gfp
, order
, nid
);
1862 if (page
&& page_to_nid(page
) == nid
)
1863 inc_zone_page_state(page
, NUMA_INTERLEAVE_HIT
);
1868 * alloc_pages_vma - Allocate a page for a VMA.
1871 * %GFP_USER user allocation.
1872 * %GFP_KERNEL kernel allocations,
1873 * %GFP_HIGHMEM highmem/user allocations,
1874 * %GFP_FS allocation should not call back into a file system.
1875 * %GFP_ATOMIC don't sleep.
1877 * @order:Order of the GFP allocation.
1878 * @vma: Pointer to VMA or NULL if not available.
1879 * @addr: Virtual Address of the allocation. Must be inside the VMA.
1880 * @node: Which node to prefer for allocation (modulo policy).
1881 * @hugepage: for hugepages try only the preferred node if possible
1883 * This function allocates a page from the kernel page pool and applies
1884 * a NUMA policy associated with the VMA or the current process.
1885 * When VMA is not NULL caller must hold down_read on the mmap_sem of the
1886 * mm_struct of the VMA to prevent it from going away. Should be used for
1887 * all allocations for pages that will be mapped into user space. Returns
1888 * NULL when no page can be allocated.
1891 alloc_pages_vma(gfp_t gfp
, int order
, struct vm_area_struct
*vma
,
1892 unsigned long addr
, int node
, bool hugepage
)
1894 struct mempolicy
*pol
;
1899 pol
= get_vma_policy(vma
, addr
);
1901 if (pol
->mode
== MPOL_INTERLEAVE
) {
1904 nid
= interleave_nid(pol
, vma
, addr
, PAGE_SHIFT
+ order
);
1906 page
= alloc_page_interleave(gfp
, order
, nid
);
1910 if (unlikely(IS_ENABLED(CONFIG_TRANSPARENT_HUGEPAGE
) && hugepage
)) {
1911 int hpage_node
= node
;
1914 * For hugepage allocation and non-interleave policy which
1915 * allows the current node (or other explicitly preferred
1916 * node) we only try to allocate from the current/preferred
1917 * node and don't fall back to other nodes, as the cost of
1918 * remote accesses would likely offset THP benefits.
1920 * If the policy is interleave, or does not allow the current
1921 * node in its nodemask, we allocate the standard way.
1923 if (pol
->mode
== MPOL_PREFERRED
&&
1924 !(pol
->flags
& MPOL_F_LOCAL
))
1925 hpage_node
= pol
->v
.preferred_node
;
1927 nmask
= policy_nodemask(gfp
, pol
);
1928 if (!nmask
|| node_isset(hpage_node
, *nmask
)) {
1930 page
= __alloc_pages_node(hpage_node
,
1931 gfp
| __GFP_THISNODE
, order
);
1936 nmask
= policy_nodemask(gfp
, pol
);
1937 preferred_nid
= policy_node(gfp
, pol
, node
);
1938 page
= __alloc_pages_nodemask(gfp
, order
, preferred_nid
, nmask
);
1945 * alloc_pages_current - Allocate pages.
1948 * %GFP_USER user allocation,
1949 * %GFP_KERNEL kernel allocation,
1950 * %GFP_HIGHMEM highmem allocation,
1951 * %GFP_FS don't call back into a file system.
1952 * %GFP_ATOMIC don't sleep.
1953 * @order: Power of two of allocation size in pages. 0 is a single page.
1955 * Allocate a page from the kernel page pool. When not in
1956 * interrupt context and apply the current process NUMA policy.
1957 * Returns NULL when no page can be allocated.
1959 struct page
*alloc_pages_current(gfp_t gfp
, unsigned order
)
1961 struct mempolicy
*pol
= &default_policy
;
1964 if (!in_interrupt() && !(gfp
& __GFP_THISNODE
))
1965 pol
= get_task_policy(current
);
1968 * No reference counting needed for current->mempolicy
1969 * nor system default_policy
1971 if (pol
->mode
== MPOL_INTERLEAVE
)
1972 page
= alloc_page_interleave(gfp
, order
, interleave_nodes(pol
));
1974 page
= __alloc_pages_nodemask(gfp
, order
,
1975 policy_node(gfp
, pol
, numa_node_id()),
1976 policy_nodemask(gfp
, pol
));
1980 EXPORT_SYMBOL(alloc_pages_current
);
1982 int vma_dup_policy(struct vm_area_struct
*src
, struct vm_area_struct
*dst
)
1984 struct mempolicy
*pol
= mpol_dup(vma_policy(src
));
1987 return PTR_ERR(pol
);
1988 dst
->vm_policy
= pol
;
1993 * If mpol_dup() sees current->cpuset == cpuset_being_rebound, then it
1994 * rebinds the mempolicy its copying by calling mpol_rebind_policy()
1995 * with the mems_allowed returned by cpuset_mems_allowed(). This
1996 * keeps mempolicies cpuset relative after its cpuset moves. See
1997 * further kernel/cpuset.c update_nodemask().
1999 * current's mempolicy may be rebinded by the other task(the task that changes
2000 * cpuset's mems), so we needn't do rebind work for current task.
2003 /* Slow path of a mempolicy duplicate */
2004 struct mempolicy
*__mpol_dup(struct mempolicy
*old
)
2006 struct mempolicy
*new = kmem_cache_alloc(policy_cache
, GFP_KERNEL
);
2009 return ERR_PTR(-ENOMEM
);
2011 /* task's mempolicy is protected by alloc_lock */
2012 if (old
== current
->mempolicy
) {
2015 task_unlock(current
);
2019 if (current_cpuset_is_being_rebound()) {
2020 nodemask_t mems
= cpuset_mems_allowed(current
);
2021 mpol_rebind_policy(new, &mems
);
2023 atomic_set(&new->refcnt
, 1);
2027 /* Slow path of a mempolicy comparison */
2028 bool __mpol_equal(struct mempolicy
*a
, struct mempolicy
*b
)
2032 if (a
->mode
!= b
->mode
)
2034 if (a
->flags
!= b
->flags
)
2036 if (mpol_store_user_nodemask(a
))
2037 if (!nodes_equal(a
->w
.user_nodemask
, b
->w
.user_nodemask
))
2043 case MPOL_INTERLEAVE
:
2044 return !!nodes_equal(a
->v
.nodes
, b
->v
.nodes
);
2045 case MPOL_PREFERRED
:
2046 return a
->v
.preferred_node
== b
->v
.preferred_node
;
2054 * Shared memory backing store policy support.
2056 * Remember policies even when nobody has shared memory mapped.
2057 * The policies are kept in Red-Black tree linked from the inode.
2058 * They are protected by the sp->lock rwlock, which should be held
2059 * for any accesses to the tree.
2063 * lookup first element intersecting start-end. Caller holds sp->lock for
2064 * reading or for writing
2066 static struct sp_node
*
2067 sp_lookup(struct shared_policy
*sp
, unsigned long start
, unsigned long end
)
2069 struct rb_node
*n
= sp
->root
.rb_node
;
2072 struct sp_node
*p
= rb_entry(n
, struct sp_node
, nd
);
2074 if (start
>= p
->end
)
2076 else if (end
<= p
->start
)
2084 struct sp_node
*w
= NULL
;
2085 struct rb_node
*prev
= rb_prev(n
);
2088 w
= rb_entry(prev
, struct sp_node
, nd
);
2089 if (w
->end
<= start
)
2093 return rb_entry(n
, struct sp_node
, nd
);
2097 * Insert a new shared policy into the list. Caller holds sp->lock for
2100 static void sp_insert(struct shared_policy
*sp
, struct sp_node
*new)
2102 struct rb_node
**p
= &sp
->root
.rb_node
;
2103 struct rb_node
*parent
= NULL
;
2108 nd
= rb_entry(parent
, struct sp_node
, nd
);
2109 if (new->start
< nd
->start
)
2111 else if (new->end
> nd
->end
)
2112 p
= &(*p
)->rb_right
;
2116 rb_link_node(&new->nd
, parent
, p
);
2117 rb_insert_color(&new->nd
, &sp
->root
);
2118 pr_debug("inserting %lx-%lx: %d\n", new->start
, new->end
,
2119 new->policy
? new->policy
->mode
: 0);
2122 /* Find shared policy intersecting idx */
2124 mpol_shared_policy_lookup(struct shared_policy
*sp
, unsigned long idx
)
2126 struct mempolicy
*pol
= NULL
;
2129 if (!sp
->root
.rb_node
)
2131 read_lock(&sp
->lock
);
2132 sn
= sp_lookup(sp
, idx
, idx
+1);
2134 mpol_get(sn
->policy
);
2137 read_unlock(&sp
->lock
);
2141 static void sp_free(struct sp_node
*n
)
2143 mpol_put(n
->policy
);
2144 kmem_cache_free(sn_cache
, n
);
2148 * mpol_misplaced - check whether current page node is valid in policy
2150 * @page: page to be checked
2151 * @vma: vm area where page mapped
2152 * @addr: virtual address where page mapped
2154 * Lookup current policy node id for vma,addr and "compare to" page's
2158 * -1 - not misplaced, page is in the right node
2159 * node - node id where the page should be
2161 * Policy determination "mimics" alloc_page_vma().
2162 * Called from fault path where we know the vma and faulting address.
2164 int mpol_misplaced(struct page
*page
, struct vm_area_struct
*vma
, unsigned long addr
)
2166 struct mempolicy
*pol
;
2168 int curnid
= page_to_nid(page
);
2169 unsigned long pgoff
;
2170 int thiscpu
= raw_smp_processor_id();
2171 int thisnid
= cpu_to_node(thiscpu
);
2177 pol
= get_vma_policy(vma
, addr
);
2178 if (!(pol
->flags
& MPOL_F_MOF
))
2181 switch (pol
->mode
) {
2182 case MPOL_INTERLEAVE
:
2183 BUG_ON(addr
>= vma
->vm_end
);
2184 BUG_ON(addr
< vma
->vm_start
);
2186 pgoff
= vma
->vm_pgoff
;
2187 pgoff
+= (addr
- vma
->vm_start
) >> PAGE_SHIFT
;
2188 polnid
= offset_il_node(pol
, vma
, pgoff
);
2191 case MPOL_PREFERRED
:
2192 if (pol
->flags
& MPOL_F_LOCAL
)
2193 polnid
= numa_node_id();
2195 polnid
= pol
->v
.preferred_node
;
2201 * allows binding to multiple nodes.
2202 * use current page if in policy nodemask,
2203 * else select nearest allowed node, if any.
2204 * If no allowed nodes, use current [!misplaced].
2206 if (node_isset(curnid
, pol
->v
.nodes
))
2208 z
= first_zones_zonelist(
2209 node_zonelist(numa_node_id(), GFP_HIGHUSER
),
2210 gfp_zone(GFP_HIGHUSER
),
2212 polnid
= z
->zone
->node
;
2219 /* Migrate the page towards the node whose CPU is referencing it */
2220 if (pol
->flags
& MPOL_F_MORON
) {
2223 if (!should_numa_migrate_memory(current
, page
, curnid
, thiscpu
))
2227 if (curnid
!= polnid
)
2236 * Drop the (possibly final) reference to task->mempolicy. It needs to be
2237 * dropped after task->mempolicy is set to NULL so that any allocation done as
2238 * part of its kmem_cache_free(), such as by KASAN, doesn't reference a freed
2241 void mpol_put_task_policy(struct task_struct
*task
)
2243 struct mempolicy
*pol
;
2246 pol
= task
->mempolicy
;
2247 task
->mempolicy
= NULL
;
2252 static void sp_delete(struct shared_policy
*sp
, struct sp_node
*n
)
2254 pr_debug("deleting %lx-l%lx\n", n
->start
, n
->end
);
2255 rb_erase(&n
->nd
, &sp
->root
);
2259 static void sp_node_init(struct sp_node
*node
, unsigned long start
,
2260 unsigned long end
, struct mempolicy
*pol
)
2262 node
->start
= start
;
2267 static struct sp_node
*sp_alloc(unsigned long start
, unsigned long end
,
2268 struct mempolicy
*pol
)
2271 struct mempolicy
*newpol
;
2273 n
= kmem_cache_alloc(sn_cache
, GFP_KERNEL
);
2277 newpol
= mpol_dup(pol
);
2278 if (IS_ERR(newpol
)) {
2279 kmem_cache_free(sn_cache
, n
);
2282 newpol
->flags
|= MPOL_F_SHARED
;
2283 sp_node_init(n
, start
, end
, newpol
);
2288 /* Replace a policy range. */
2289 static int shared_policy_replace(struct shared_policy
*sp
, unsigned long start
,
2290 unsigned long end
, struct sp_node
*new)
2293 struct sp_node
*n_new
= NULL
;
2294 struct mempolicy
*mpol_new
= NULL
;
2298 write_lock(&sp
->lock
);
2299 n
= sp_lookup(sp
, start
, end
);
2300 /* Take care of old policies in the same range. */
2301 while (n
&& n
->start
< end
) {
2302 struct rb_node
*next
= rb_next(&n
->nd
);
2303 if (n
->start
>= start
) {
2309 /* Old policy spanning whole new range. */
2314 *mpol_new
= *n
->policy
;
2315 atomic_set(&mpol_new
->refcnt
, 1);
2316 sp_node_init(n_new
, end
, n
->end
, mpol_new
);
2318 sp_insert(sp
, n_new
);
2327 n
= rb_entry(next
, struct sp_node
, nd
);
2331 write_unlock(&sp
->lock
);
2338 kmem_cache_free(sn_cache
, n_new
);
2343 write_unlock(&sp
->lock
);
2345 n_new
= kmem_cache_alloc(sn_cache
, GFP_KERNEL
);
2348 mpol_new
= kmem_cache_alloc(policy_cache
, GFP_KERNEL
);
2355 * mpol_shared_policy_init - initialize shared policy for inode
2356 * @sp: pointer to inode shared policy
2357 * @mpol: struct mempolicy to install
2359 * Install non-NULL @mpol in inode's shared policy rb-tree.
2360 * On entry, the current task has a reference on a non-NULL @mpol.
2361 * This must be released on exit.
2362 * This is called at get_inode() calls and we can use GFP_KERNEL.
2364 void mpol_shared_policy_init(struct shared_policy
*sp
, struct mempolicy
*mpol
)
2368 sp
->root
= RB_ROOT
; /* empty tree == default mempolicy */
2369 rwlock_init(&sp
->lock
);
2372 struct vm_area_struct pvma
;
2373 struct mempolicy
*new;
2374 NODEMASK_SCRATCH(scratch
);
2378 /* contextualize the tmpfs mount point mempolicy */
2379 new = mpol_new(mpol
->mode
, mpol
->flags
, &mpol
->w
.user_nodemask
);
2381 goto free_scratch
; /* no valid nodemask intersection */
2384 ret
= mpol_set_nodemask(new, &mpol
->w
.user_nodemask
, scratch
);
2385 task_unlock(current
);
2389 /* Create pseudo-vma that contains just the policy */
2390 memset(&pvma
, 0, sizeof(struct vm_area_struct
));
2391 pvma
.vm_end
= TASK_SIZE
; /* policy covers entire file */
2392 mpol_set_shared_policy(sp
, &pvma
, new); /* adds ref */
2395 mpol_put(new); /* drop initial ref */
2397 NODEMASK_SCRATCH_FREE(scratch
);
2399 mpol_put(mpol
); /* drop our incoming ref on sb mpol */
2403 int mpol_set_shared_policy(struct shared_policy
*info
,
2404 struct vm_area_struct
*vma
, struct mempolicy
*npol
)
2407 struct sp_node
*new = NULL
;
2408 unsigned long sz
= vma_pages(vma
);
2410 pr_debug("set_shared_policy %lx sz %lu %d %d %lx\n",
2412 sz
, npol
? npol
->mode
: -1,
2413 npol
? npol
->flags
: -1,
2414 npol
? nodes_addr(npol
->v
.nodes
)[0] : NUMA_NO_NODE
);
2417 new = sp_alloc(vma
->vm_pgoff
, vma
->vm_pgoff
+ sz
, npol
);
2421 err
= shared_policy_replace(info
, vma
->vm_pgoff
, vma
->vm_pgoff
+sz
, new);
2427 /* Free a backing policy store on inode delete. */
2428 void mpol_free_shared_policy(struct shared_policy
*p
)
2431 struct rb_node
*next
;
2433 if (!p
->root
.rb_node
)
2435 write_lock(&p
->lock
);
2436 next
= rb_first(&p
->root
);
2438 n
= rb_entry(next
, struct sp_node
, nd
);
2439 next
= rb_next(&n
->nd
);
2442 write_unlock(&p
->lock
);
2445 #ifdef CONFIG_NUMA_BALANCING
2446 static int __initdata numabalancing_override
;
2448 static void __init
check_numabalancing_enable(void)
2450 bool numabalancing_default
= false;
2452 if (IS_ENABLED(CONFIG_NUMA_BALANCING_DEFAULT_ENABLED
))
2453 numabalancing_default
= true;
2455 /* Parsed by setup_numabalancing. override == 1 enables, -1 disables */
2456 if (numabalancing_override
)
2457 set_numabalancing_state(numabalancing_override
== 1);
2459 if (num_online_nodes() > 1 && !numabalancing_override
) {
2460 pr_info("%s automatic NUMA balancing. Configure with numa_balancing= or the kernel.numa_balancing sysctl\n",
2461 numabalancing_default
? "Enabling" : "Disabling");
2462 set_numabalancing_state(numabalancing_default
);
2466 static int __init
setup_numabalancing(char *str
)
2472 if (!strcmp(str
, "enable")) {
2473 numabalancing_override
= 1;
2475 } else if (!strcmp(str
, "disable")) {
2476 numabalancing_override
= -1;
2481 pr_warn("Unable to parse numa_balancing=\n");
2485 __setup("numa_balancing=", setup_numabalancing
);
2487 static inline void __init
check_numabalancing_enable(void)
2490 #endif /* CONFIG_NUMA_BALANCING */
2492 /* assumes fs == KERNEL_DS */
2493 void __init
numa_policy_init(void)
2495 nodemask_t interleave_nodes
;
2496 unsigned long largest
= 0;
2497 int nid
, prefer
= 0;
2499 policy_cache
= kmem_cache_create("numa_policy",
2500 sizeof(struct mempolicy
),
2501 0, SLAB_PANIC
, NULL
);
2503 sn_cache
= kmem_cache_create("shared_policy_node",
2504 sizeof(struct sp_node
),
2505 0, SLAB_PANIC
, NULL
);
2507 for_each_node(nid
) {
2508 preferred_node_policy
[nid
] = (struct mempolicy
) {
2509 .refcnt
= ATOMIC_INIT(1),
2510 .mode
= MPOL_PREFERRED
,
2511 .flags
= MPOL_F_MOF
| MPOL_F_MORON
,
2512 .v
= { .preferred_node
= nid
, },
2517 * Set interleaving policy for system init. Interleaving is only
2518 * enabled across suitably sized nodes (default is >= 16MB), or
2519 * fall back to the largest node if they're all smaller.
2521 nodes_clear(interleave_nodes
);
2522 for_each_node_state(nid
, N_MEMORY
) {
2523 unsigned long total_pages
= node_present_pages(nid
);
2525 /* Preserve the largest node */
2526 if (largest
< total_pages
) {
2527 largest
= total_pages
;
2531 /* Interleave this node? */
2532 if ((total_pages
<< PAGE_SHIFT
) >= (16 << 20))
2533 node_set(nid
, interleave_nodes
);
2536 /* All too small, use the largest */
2537 if (unlikely(nodes_empty(interleave_nodes
)))
2538 node_set(prefer
, interleave_nodes
);
2540 if (do_set_mempolicy(MPOL_INTERLEAVE
, 0, &interleave_nodes
))
2541 pr_err("%s: interleaving failed\n", __func__
);
2543 check_numabalancing_enable();
2546 /* Reset policy of current process to default */
2547 void numa_default_policy(void)
2549 do_set_mempolicy(MPOL_DEFAULT
, 0, NULL
);
2553 * Parse and format mempolicy from/to strings
2557 * "local" is implemented internally by MPOL_PREFERRED with MPOL_F_LOCAL flag.
2559 static const char * const policy_modes
[] =
2561 [MPOL_DEFAULT
] = "default",
2562 [MPOL_PREFERRED
] = "prefer",
2563 [MPOL_BIND
] = "bind",
2564 [MPOL_INTERLEAVE
] = "interleave",
2565 [MPOL_LOCAL
] = "local",
2571 * mpol_parse_str - parse string to mempolicy, for tmpfs mpol mount option.
2572 * @str: string containing mempolicy to parse
2573 * @mpol: pointer to struct mempolicy pointer, returned on success.
2576 * <mode>[=<flags>][:<nodelist>]
2578 * On success, returns 0, else 1
2580 int mpol_parse_str(char *str
, struct mempolicy
**mpol
)
2582 struct mempolicy
*new = NULL
;
2583 unsigned short mode
;
2584 unsigned short mode_flags
;
2586 char *nodelist
= strchr(str
, ':');
2587 char *flags
= strchr(str
, '=');
2591 /* NUL-terminate mode or flags string */
2593 if (nodelist_parse(nodelist
, nodes
))
2595 if (!nodes_subset(nodes
, node_states
[N_MEMORY
]))
2601 *flags
++ = '\0'; /* terminate mode string */
2603 for (mode
= 0; mode
< MPOL_MAX
; mode
++) {
2604 if (!strcmp(str
, policy_modes
[mode
])) {
2608 if (mode
>= MPOL_MAX
)
2612 case MPOL_PREFERRED
:
2614 * Insist on a nodelist of one node only
2617 char *rest
= nodelist
;
2618 while (isdigit(*rest
))
2624 case MPOL_INTERLEAVE
:
2626 * Default to online nodes with memory if no nodelist
2629 nodes
= node_states
[N_MEMORY
];
2633 * Don't allow a nodelist; mpol_new() checks flags
2637 mode
= MPOL_PREFERRED
;
2641 * Insist on a empty nodelist
2648 * Insist on a nodelist
2657 * Currently, we only support two mutually exclusive
2660 if (!strcmp(flags
, "static"))
2661 mode_flags
|= MPOL_F_STATIC_NODES
;
2662 else if (!strcmp(flags
, "relative"))
2663 mode_flags
|= MPOL_F_RELATIVE_NODES
;
2668 new = mpol_new(mode
, mode_flags
, &nodes
);
2673 * Save nodes for mpol_to_str() to show the tmpfs mount options
2674 * for /proc/mounts, /proc/pid/mounts and /proc/pid/mountinfo.
2676 if (mode
!= MPOL_PREFERRED
)
2677 new->v
.nodes
= nodes
;
2679 new->v
.preferred_node
= first_node(nodes
);
2681 new->flags
|= MPOL_F_LOCAL
;
2684 * Save nodes for contextualization: this will be used to "clone"
2685 * the mempolicy in a specific context [cpuset] at a later time.
2687 new->w
.user_nodemask
= nodes
;
2692 /* Restore string for error message */
2701 #endif /* CONFIG_TMPFS */
2704 * mpol_to_str - format a mempolicy structure for printing
2705 * @buffer: to contain formatted mempolicy string
2706 * @maxlen: length of @buffer
2707 * @pol: pointer to mempolicy to be formatted
2709 * Convert @pol into a string. If @buffer is too short, truncate the string.
2710 * Recommend a @maxlen of at least 32 for the longest mode, "interleave", the
2711 * longest flag, "relative", and to display at least a few node ids.
2713 void mpol_to_str(char *buffer
, int maxlen
, struct mempolicy
*pol
)
2716 nodemask_t nodes
= NODE_MASK_NONE
;
2717 unsigned short mode
= MPOL_DEFAULT
;
2718 unsigned short flags
= 0;
2720 if (pol
&& pol
!= &default_policy
&& !(pol
->flags
& MPOL_F_MORON
)) {
2728 case MPOL_PREFERRED
:
2729 if (flags
& MPOL_F_LOCAL
)
2732 node_set(pol
->v
.preferred_node
, nodes
);
2735 case MPOL_INTERLEAVE
:
2736 nodes
= pol
->v
.nodes
;
2740 snprintf(p
, maxlen
, "unknown");
2744 p
+= snprintf(p
, maxlen
, "%s", policy_modes
[mode
]);
2746 if (flags
& MPOL_MODE_FLAGS
) {
2747 p
+= snprintf(p
, buffer
+ maxlen
- p
, "=");
2750 * Currently, the only defined flags are mutually exclusive
2752 if (flags
& MPOL_F_STATIC_NODES
)
2753 p
+= snprintf(p
, buffer
+ maxlen
- p
, "static");
2754 else if (flags
& MPOL_F_RELATIVE_NODES
)
2755 p
+= snprintf(p
, buffer
+ maxlen
- p
, "relative");
2758 if (!nodes_empty(nodes
))
2759 p
+= scnprintf(p
, buffer
+ maxlen
- p
, ":%*pbl",
2760 nodemask_pr_args(&nodes
));