CVE-2026-89772
Received Received - Intake

Write-Protect Folio Flaw in Btrfs Linux Kernel

Vulnerability report for CVE-2026-89772, including description, CVSS score, EPSS score, affected products, exploitability, helpful resources, and attack-flow context.

Publication date: 2026-09-11

Last updated on: 2026-09-11

Assigner: kernel.org

Description

In the Linux kernel, the following vulnerability has been resolved: btrfs: write-protect folios during data writeback commit 095be159f3eb ("btrfs: unify folio dirty flag clearing") replaced the folio_clear_dirty_for_io() call in extent_write_cache_pages() with a plain folio_test_dirty() check. Besides clearing the dirty flag, folio_clear_dirty_for_io() also calls folio_mkclean(), which write-protects the shared mmap PTEs mapping the folio. Note that we still do call folio_clear_dirty_for_io() later in submit_one_sector() when we clear dirty on the last sector of the folio (the only sector for non-subpage cases). But we lost this early call in extent_write_cache_pages(). Without the extra write-protection, a process with the file mmap-ed can modify a sector while it is being used by writeback in a way that expects a stable folio (checksumming, compressing, copying, etc...) without faulting, which manifests as a handful of concrete bugs. 1. For large folios or subpage sectorsize, it is possible to submit a bio which does not cover the whole folio. When this happens, we will have a bio in flight for a folio that we have *not* called folio_clear_dirty_for_io() on. If a task with an existing mmap-ed PTE writes (without faulting..) in this window, it can result in corruptions. If the write arrives while the checksumming or writing itself is underway, this can result in an invalid checksum and later corruption reports on read. If the write arrives after checksumming/writing is done but before the last sector dirty is cleared, then the write is present in page cache but doesn't affect the dirty tracking and will be lost when the folio is fully finished being submitted and the dirty bit is cleared. This results in losing the write even if fsync() is called. 2. For zoned submissions which are done in batch separate from the main extent_writepage() loop, we also risk csum violations for those submissions. Zoned writes are clamped to max_zone_append_size and are not aligned with folios, so a submission can span two folios. The first folio being processed in extent_write_cache_pages() will call extent_write_locked_range() which will submit the partial range of the next folio, while the rest of that folio could still be dirty. So clearing dirty on the submitted sectors doesn't call folio_clear_dirty_for_io() and we have the same issue. Since extent_write_cache_pages() skips these batch submitted folios (they are already marked for writeback from submission by the preceding folio), we must add the extra write protection in lock_delalloc_folios(). 3. For inline extents this will subtly risk losing writes that happen after/while we copy the inline extent but before we clear dirty on the folio. 4. For folios spanning EOF, mmap could tamper with the zeroed bytes past EOF and cause them to be persisted where future faults would improperly see them instead of zeros. 5. Finally, for compressed extents, we risk modifying the folios while we work on compressing them which will result in corrupted compressed data. Specifically, in run_delalloc_compressed() we queue up work to do compress_file_range() in BTRFS_COMPRESSION_CHUNK_SIZE (512K) chunks which will call btrfs_folio_clamp_clear_dirty() on the range. For non-subpage, this will always clear the whole folio, safely. For subpage, we risk a partial clear here as well. In particular, imagine a 2M folio broken up into 512K chunks of work which might start compression work on one chunk before all the chunks compress_file_range() workers have gotten far enough to finish clearing all the dirty bitmaps of the folio and getting to folio_clear_dirty_for_io(). Large folios on the edges of submission ranges are similarly at risk to be only partly cleared. This particular gap was introduced by a second patch in the same series: commit a4ef54dbb576 ("btrfs: make extent_range_clear_dirty_for_io() to handle sector size < page size cases") We cannot simply restore the call to folio_clear ---truncated---

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Meta Information

Published
2026-09-11
Last Modified
2026-09-11
Generated
2026-09-12
AI Q&A
2026-09-12
EPSS Evaluated
N/A
NVD
EUVD

Affected Vendors & Products

Showing 1 associated CPE
Vendor Product Version / Range
linux linux_kernel *

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Exploitability

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CWE ID Description
CWE-UNKNOWN

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Executive Summary

This vulnerability in the Linux kernel affects the BTRFS filesystem. It involves a missing write-protection step during data writeback, which can lead to data corruption. Specifically, a process with a file mmap-ed can modify data while it is being written to disk, causing checksum mismatches, lost writes, or corrupted compressed data. The issue arises because the system fails to properly clear dirty flags and write-protect shared memory pages during writeback operations.

The vulnerability was introduced by a patch that replaced a function call responsible for both clearing dirty flags and write-protecting memory pages. Without this protection, concurrent writes via mmap can interfere with ongoing writeback processes, leading to inconsistencies in the filesystem.

Detection Guidance

This vulnerability is specific to the Linux kernel's BTRFS filesystem and requires kernel-level inspection. Detection involves checking if your system runs a vulnerable kernel version and examining BTRFS-related processes. Use commands like 'uname -a' to check kernel version and 'dmesg | grep btrfs' to look for BTRFS-related errors. No network-specific detection commands are provided in the context.

Impact Analysis

This vulnerability can cause data corruption, including checksum failures, lost writes, and corrupted compressed files. If you use BTRFS with mmap operations or compressed files, your data may become inconsistent or lost. It could also lead to filesystem errors or crashes during write operations.

For users relying on BTRFS for storage, this could mean corrupted backups, lost files, or unexpected behavior when writing data. Systems using BTRFS with mmap-heavy applications or compression are particularly at risk.

Mitigation Strategies

Apply the kernel patch that resolves this issue by updating to a patched kernel version. Monitor BTRFS-related errors in system logs after patching. Avoid using BTRFS features that involve mmap or writeback until patched. No specific commands are provided in the context for mitigation.

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