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The core do_mmap() function accepts a vm_flags_t parameter which it then manipulates before passing to mmap_region() to do the heavy lifting of the memory mapping. Update do_mmap() to instead accept a vma_flags_t parameter, and adjust all the logic within do_mmap() to manipulate this instead. This is as part of the ongoing effort to convert VMA flags from a system word size to a bitmap type which allows us to unrestrict the number of VMA flags, as well as gain control over how VMA flag manipulation occurs. We do not cascade these changes to all functions which accept vm_flags_t, but rather use vma_flags_to_legacy() where necessary, specifically deferring converting calc_vm_prot_bits(), calc_vm_flag_bits() and __get_unmapped_area() to vma_flags_t. Also utilise the new vma_flags_can_grow() predicate which correctly handles the case of architectures without upward growing stacks. As part of this change, introduce VMA_SHADOW_STACK so we can correctly handle the case of the shadow stack not being defined. No functional change intended. Link: https://lore.kernel.org/20260711-b4-vma-flags-mm-v2-2-0fa2357d5431@kernel.org Signed-off-by: Lorenzo Stoakes <ljs@kernel.org> Reviewed-by: Lance Yang <lance.yang@linux.dev> Reviewed-by: Zi Yan <ziy@nvidia.com> Reviewed-by: Vlastimil Babka (SUSE) <vbabka@kernel.org> Cc: Baolin Wang <baolin.wang@linux.alibaba.com> Cc: Barry Song <baohua@kernel.org> Cc: Christian Brauner <brauner@kernel.org> Cc: Dave Airlie <airlied@gmail.com> Cc: David Hildenbrand <david@kernel.org> Cc: Dev Jain <dev.jain@arm.com> Cc: Jani Nikula <jani.nikula@intel.com> Cc: Jan Kara <jack@suse.cz> Cc: Jann Horn <jannh@google.com> Cc: Mike Rapoport <rppt@kernel.org> Cc: Muchun Song <muchun.song@linux.dev> Cc: Nico Pache <npache@redhat.com> Cc: Oscar Salvador <osalvador@suse.de> Cc: Pedro Falcato <pfalcato@suse.de> Cc: Suren Baghdasaryan <surenb@google.com> Cc: Thomas Zimmermann <tzimmermann@suse.de> Signed-off-by: Andrew Morton <akpm@linux-foundation.org>
522 lines
13 KiB
C
522 lines
13 KiB
C
// SPDX-License-Identifier: GPL-2.0
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/*
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* memfd_create system call and file sealing support
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*
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* Code was originally included in shmem.c, and broken out to facilitate
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* use by hugetlbfs as well as tmpfs.
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*/
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#include <linux/fs.h>
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#include <linux/vfs.h>
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#include <linux/pagemap.h>
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#include <linux/file.h>
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#include <linux/mm.h>
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#include <linux/sched/signal.h>
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#include <linux/khugepaged.h>
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#include <linux/syscalls.h>
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#include <linux/hugetlb.h>
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#include <linux/shmem_fs.h>
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#include <linux/memfd.h>
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#include <linux/pid_namespace.h>
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#include <uapi/linux/memfd.h>
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#include "internal.h"
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#include "swap.h"
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/*
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* We need a tag: a new tag would expand every xa_node by 8 bytes,
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* so reuse a tag which we firmly believe is never set or cleared on tmpfs
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* or hugetlbfs because they are memory only filesystems.
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*/
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#define MEMFD_TAG_PINNED PAGECACHE_TAG_TOWRITE
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#define LAST_SCAN 4 /* about 150ms max */
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static bool memfd_folio_has_extra_refs(struct folio *folio)
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{
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return folio_ref_count(folio) != folio_expected_ref_count(folio);
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}
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static void memfd_tag_pins(struct xa_state *xas)
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{
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struct folio *folio;
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int latency = 0;
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lru_add_drain();
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xas_lock_irq(xas);
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xas_for_each(xas, folio, ULONG_MAX) {
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if (!xa_is_value(folio) && memfd_folio_has_extra_refs(folio))
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xas_set_mark(xas, MEMFD_TAG_PINNED);
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if (++latency < XA_CHECK_SCHED)
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continue;
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latency = 0;
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xas_pause(xas);
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xas_unlock_irq(xas);
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cond_resched();
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xas_lock_irq(xas);
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}
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xas_unlock_irq(xas);
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}
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/*
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* This is a helper function used by memfd_pin_user_pages() in GUP (gup.c).
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* It is mainly called to allocate a folio in a memfd when the caller
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* (memfd_pin_folios()) cannot find a folio in the page cache at a given
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* index in the mapping.
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*/
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struct folio *memfd_alloc_folio(struct file *memfd, pgoff_t idx)
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{
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#ifdef CONFIG_HUGETLB_PAGE
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struct folio *folio;
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gfp_t gfp_mask;
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if (is_file_hugepages(memfd)) {
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/*
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* The folio would most likely be accessed by a DMA driver,
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* therefore, we have zone memory constraints where we can
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* alloc from. Also, the folio will be pinned for an indefinite
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* amount of time, so it is not expected to be migrated away.
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*/
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struct inode *inode = file_inode(memfd);
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struct hstate *h = hstate_file(memfd);
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int err = -ENOMEM;
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long nr_resv;
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gfp_mask = htlb_alloc_mask(h);
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gfp_mask &= ~(__GFP_HIGHMEM | __GFP_MOVABLE);
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idx >>= huge_page_order(h);
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nr_resv = hugetlb_reserve_pages(inode, idx, idx + 1, NULL, EMPTY_VMA_FLAGS);
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if (nr_resv < 0)
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return ERR_PTR(nr_resv);
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folio = alloc_hugetlb_folio_reserve(h,
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numa_node_id(),
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NULL,
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gfp_mask);
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if (folio) {
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u32 hash;
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/*
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* Zero the folio to prevent information leaks to userspace.
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* Use folio_zero_user() which is optimized for huge/gigantic
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* pages. Pass 0 as addr_hint since this is not a faulting path
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* and we don't have a user virtual address yet.
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*/
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folio_zero_user(folio, 0);
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/*
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* Mark the folio uptodate before adding to page cache,
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* as required by filemap.c and other hugetlb paths.
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*/
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__folio_mark_uptodate(folio);
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/*
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* Serialize hugepage allocation and instantiation to prevent
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* races with concurrent allocations, as required by all other
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* callers of hugetlb_add_to_page_cache().
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*/
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hash = hugetlb_fault_mutex_hash(memfd->f_mapping, idx);
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mutex_lock(&hugetlb_fault_mutex_table[hash]);
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err = hugetlb_add_to_page_cache(folio,
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memfd->f_mapping,
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idx);
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mutex_unlock(&hugetlb_fault_mutex_table[hash]);
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if (err) {
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folio_put(folio);
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goto err_unresv;
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}
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hugetlb_set_folio_subpool(folio, subpool_inode(inode));
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folio_unlock(folio);
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return folio;
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}
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err_unresv:
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if (nr_resv > 0)
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hugetlb_unreserve_pages(inode, idx, idx + 1, 0);
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return ERR_PTR(err);
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}
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#endif
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return shmem_read_folio(memfd->f_mapping, idx);
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}
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/*
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* Setting SEAL_WRITE requires us to verify there's no pending writer. However,
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* via get_user_pages(), drivers might have some pending I/O without any active
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* user-space mappings (eg., direct-IO, AIO). Therefore, we look at all folios
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* and see whether it has an elevated ref-count. If so, we tag them and wait for
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* them to be dropped.
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* The caller must guarantee that no new user will acquire writable references
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* to those folios to avoid races.
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*/
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static int memfd_wait_for_pins(struct address_space *mapping)
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{
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XA_STATE(xas, &mapping->i_pages, 0);
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struct folio *folio;
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int error, scan;
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memfd_tag_pins(&xas);
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error = 0;
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for (scan = 0; scan <= LAST_SCAN; scan++) {
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int latency = 0;
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if (!xas_marked(&xas, MEMFD_TAG_PINNED))
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break;
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if (!scan)
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lru_add_drain_all();
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else if (schedule_timeout_killable((HZ << scan) / 200))
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scan = LAST_SCAN;
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xas_set(&xas, 0);
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xas_lock_irq(&xas);
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xas_for_each_marked(&xas, folio, ULONG_MAX, MEMFD_TAG_PINNED) {
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bool clear = true;
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if (!xa_is_value(folio) &&
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memfd_folio_has_extra_refs(folio)) {
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/*
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* On the last scan, we clean up all those tags
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* we inserted; but make a note that we still
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* found folios pinned.
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*/
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if (scan == LAST_SCAN)
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error = -EBUSY;
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else
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clear = false;
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}
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if (clear)
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xas_clear_mark(&xas, MEMFD_TAG_PINNED);
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if (++latency < XA_CHECK_SCHED)
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continue;
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latency = 0;
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xas_pause(&xas);
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xas_unlock_irq(&xas);
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cond_resched();
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xas_lock_irq(&xas);
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}
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xas_unlock_irq(&xas);
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}
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return error;
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}
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static unsigned int *memfd_file_seals_ptr(struct file *file)
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{
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if (shmem_file(file))
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return &SHMEM_I(file_inode(file))->seals;
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#ifdef CONFIG_HUGETLBFS
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if (is_file_hugepages(file))
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return &HUGETLBFS_I(file_inode(file))->seals;
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#endif
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return NULL;
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}
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#define F_ALL_SEALS (F_SEAL_SEAL | \
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F_SEAL_EXEC | \
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F_SEAL_SHRINK | \
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F_SEAL_GROW | \
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F_SEAL_WRITE | \
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F_SEAL_FUTURE_WRITE)
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int memfd_add_seals(struct file *file, unsigned int seals)
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{
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struct inode *inode = file_inode(file);
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unsigned int *file_seals;
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int error;
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/*
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* SEALING
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* Sealing allows multiple parties to share a tmpfs or hugetlbfs file
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* but restrict access to a specific subset of file operations. Seals
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* can only be added, but never removed. This way, mutually untrusted
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* parties can share common memory regions with a well-defined policy.
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* A malicious peer can thus never perform unwanted operations on a
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* shared object.
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*
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* Seals are only supported on special tmpfs or hugetlbfs files and
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* always affect the whole underlying inode. Once a seal is set, it
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* may prevent some kinds of access to the file. Currently, the
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* following seals are defined:
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* SEAL_SEAL: Prevent further seals from being set on this file
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* SEAL_SHRINK: Prevent the file from shrinking
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* SEAL_GROW: Prevent the file from growing
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* SEAL_WRITE: Prevent write access to the file
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* SEAL_EXEC: Prevent modification of the exec bits in the file mode
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*
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* As we don't require any trust relationship between two parties, we
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* must prevent seals from being removed. Therefore, sealing a file
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* only adds a given set of seals to the file, it never touches
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* existing seals. Furthermore, the "setting seals"-operation can be
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* sealed itself, which basically prevents any further seal from being
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* added.
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*
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* Semantics of sealing are only defined on volatile files. Only
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* anonymous tmpfs and hugetlbfs files support sealing. More
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* importantly, seals are never written to disk. Therefore, there's
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* no plan to support it on other file types.
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*/
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if (!(file->f_mode & FMODE_WRITE))
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return -EPERM;
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if (seals & ~(unsigned int)F_ALL_SEALS)
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return -EINVAL;
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inode_lock(inode);
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file_seals = memfd_file_seals_ptr(file);
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if (!file_seals) {
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error = -EINVAL;
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goto unlock;
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}
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if (*file_seals & F_SEAL_SEAL) {
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error = -EPERM;
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goto unlock;
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}
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/*
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* SEAL_EXEC implies SEAL_WRITE, making W^X from the start.
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*/
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if (seals & F_SEAL_EXEC && inode->i_mode & 0111)
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seals |= F_SEAL_SHRINK|F_SEAL_GROW|F_SEAL_WRITE|F_SEAL_FUTURE_WRITE;
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if ((seals & F_SEAL_WRITE) && !(*file_seals & F_SEAL_WRITE)) {
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error = mapping_deny_writable(file->f_mapping);
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if (error)
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goto unlock;
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error = memfd_wait_for_pins(file->f_mapping);
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if (error) {
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mapping_allow_writable(file->f_mapping);
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goto unlock;
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}
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}
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*file_seals |= seals;
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error = 0;
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unlock:
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inode_unlock(inode);
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return error;
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}
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int memfd_get_seals(struct file *file)
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{
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unsigned int *seals = memfd_file_seals_ptr(file);
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return seals ? *seals : -EINVAL;
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}
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long memfd_fcntl(struct file *file, unsigned int cmd, unsigned int arg)
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{
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long error;
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switch (cmd) {
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case F_ADD_SEALS:
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error = memfd_add_seals(file, arg);
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break;
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case F_GET_SEALS:
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error = memfd_get_seals(file);
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break;
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default:
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error = -EINVAL;
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break;
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}
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return error;
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}
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#define MFD_NAME_PREFIX "memfd:"
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#define MFD_NAME_PREFIX_LEN (sizeof(MFD_NAME_PREFIX) - 1)
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#define MFD_NAME_MAX_LEN (NAME_MAX - MFD_NAME_PREFIX_LEN)
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#define MFD_ALL_FLAGS (MFD_CLOEXEC | MFD_ALLOW_SEALING | MFD_HUGETLB | MFD_NOEXEC_SEAL | MFD_EXEC)
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static int check_sysctl_memfd_noexec(unsigned int *flags)
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{
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#ifdef CONFIG_SYSCTL
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struct pid_namespace *ns = task_active_pid_ns(current);
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int sysctl = pidns_memfd_noexec_scope(ns);
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if (!(*flags & (MFD_EXEC | MFD_NOEXEC_SEAL))) {
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if (sysctl >= MEMFD_NOEXEC_SCOPE_NOEXEC_SEAL)
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*flags |= MFD_NOEXEC_SEAL;
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else
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*flags |= MFD_EXEC;
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}
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if (!(*flags & MFD_NOEXEC_SEAL) && sysctl >= MEMFD_NOEXEC_SCOPE_NOEXEC_ENFORCED) {
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pr_err_ratelimited(
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"%s[%d]: memfd_create() requires MFD_NOEXEC_SEAL with vm.memfd_noexec=%d\n",
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current->comm, task_pid_nr(current), sysctl);
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return -EACCES;
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}
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#endif
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return 0;
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}
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static inline bool is_write_sealed(unsigned int seals)
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{
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return seals & (F_SEAL_WRITE | F_SEAL_FUTURE_WRITE);
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}
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static int check_write_seal(vma_flags_t *vma_flags_ptr)
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{
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/* If a private mapping then writability is irrelevant. */
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if (!vma_flags_test(vma_flags_ptr, VMA_SHARED_BIT))
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return 0;
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/*
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* New PROT_WRITE and MAP_SHARED mmaps are not allowed when
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* write seals are active.
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*/
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if (vma_flags_test(vma_flags_ptr, VMA_WRITE_BIT))
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return -EPERM;
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/*
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* This is a read-only mapping, disallow mprotect() from making a
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* write-sealed mapping writable in future.
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*/
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vma_flags_clear(vma_flags_ptr, VMA_MAYWRITE_BIT);
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return 0;
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}
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int memfd_check_seals_mmap(struct file *file, vma_flags_t *vma_flags_ptr)
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{
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int err = 0;
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unsigned int *seals_ptr = memfd_file_seals_ptr(file);
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unsigned int seals = seals_ptr ? *seals_ptr : 0;
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if (is_write_sealed(seals))
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err = check_write_seal(vma_flags_ptr);
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return err;
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}
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static int sanitize_flags(unsigned int *flags_ptr)
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{
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unsigned int flags = *flags_ptr;
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if (!(flags & MFD_HUGETLB)) {
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if (flags & ~MFD_ALL_FLAGS)
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return -EINVAL;
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} else {
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/* Allow huge page size encoding in flags. */
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if (flags & ~(MFD_ALL_FLAGS |
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(MFD_HUGE_MASK << MFD_HUGE_SHIFT)))
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return -EINVAL;
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}
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/* Invalid if both EXEC and NOEXEC_SEAL are set.*/
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if ((flags & MFD_EXEC) && (flags & MFD_NOEXEC_SEAL))
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return -EINVAL;
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return check_sysctl_memfd_noexec(flags_ptr);
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}
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static char *alloc_name(const char __user *uname)
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{
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int error;
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char *name;
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long len;
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name = kmalloc(NAME_MAX + 1, GFP_KERNEL);
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if (!name)
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return ERR_PTR(-ENOMEM);
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memcpy(name, MFD_NAME_PREFIX, MFD_NAME_PREFIX_LEN);
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/* returned length does not include terminating zero */
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len = strncpy_from_user(&name[MFD_NAME_PREFIX_LEN], uname, MFD_NAME_MAX_LEN + 1);
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if (len < 0) {
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error = -EFAULT;
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goto err_name;
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} else if (len > MFD_NAME_MAX_LEN) {
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error = -EINVAL;
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goto err_name;
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}
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return name;
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err_name:
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kfree(name);
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return ERR_PTR(error);
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}
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struct file *memfd_alloc_file(const char *name, unsigned int flags)
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{
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unsigned int *file_seals;
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struct file *file;
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struct inode *inode;
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int err = 0;
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if (flags & MFD_HUGETLB) {
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file = hugetlb_file_setup(name, 0, mk_vma_flags(VMA_NORESERVE_BIT),
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HUGETLB_ANONHUGE_INODE,
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(flags >> MFD_HUGE_SHIFT) &
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MFD_HUGE_MASK);
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} else {
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file = shmem_file_setup(name, 0, mk_vma_flags(VMA_NORESERVE_BIT));
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}
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if (IS_ERR(file))
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return file;
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|
|
inode = file_inode(file);
|
|
err = security_inode_init_security_anon(inode,
|
|
&QSTR(MEMFD_ANON_NAME), NULL);
|
|
if (err) {
|
|
fput(file);
|
|
file = ERR_PTR(err);
|
|
return file;
|
|
}
|
|
|
|
file->f_mode |= FMODE_LSEEK | FMODE_PREAD | FMODE_PWRITE;
|
|
file->f_flags |= O_LARGEFILE;
|
|
|
|
if (flags & MFD_NOEXEC_SEAL) {
|
|
inode->i_mode &= ~0111;
|
|
file_seals = memfd_file_seals_ptr(file);
|
|
if (file_seals) {
|
|
*file_seals &= ~F_SEAL_SEAL;
|
|
*file_seals |= F_SEAL_EXEC;
|
|
}
|
|
} else if (flags & MFD_ALLOW_SEALING) {
|
|
/* MFD_EXEC and MFD_ALLOW_SEALING are set */
|
|
file_seals = memfd_file_seals_ptr(file);
|
|
if (file_seals)
|
|
*file_seals &= ~F_SEAL_SEAL;
|
|
}
|
|
|
|
return file;
|
|
}
|
|
|
|
SYSCALL_DEFINE2(memfd_create,
|
|
const char __user *, uname,
|
|
unsigned int, flags)
|
|
{
|
|
char *name __free(kfree) = NULL;
|
|
unsigned int fd_flags;
|
|
int error;
|
|
|
|
error = sanitize_flags(&flags);
|
|
if (error < 0)
|
|
return error;
|
|
|
|
name = alloc_name(uname);
|
|
if (IS_ERR(name))
|
|
return PTR_ERR(name);
|
|
|
|
fd_flags = (flags & MFD_CLOEXEC) ? O_CLOEXEC : 0;
|
|
return FD_ADD(fd_flags, memfd_alloc_file(name, flags));
|
|
}
|