CVE-2026-93241
memcg: bypass the reclaim and oom killer for dying tasks once oom_reaper is done
Description
In the Linux kernel, the following vulnerability has been resolved: memcg: bypass the reclaim and oom killer for dying tasks once oom_reaper is done At Meta, we are seeing instances where an OOM killed job is stuck in the exit path for several hours. In one particular case, the job was stuck for more than 8 hours and I had to manually remove the memory.max limits to allow the process to exit. The job was a single process job and had ~55 GiB memory.max and zswap enabled. It had almost 0 anon in memory and ~111 GiB in zswap compressed to ~51 GiB zswap pool (i.e. almost all of memory.current was zswap). Nothing was left on the LRUs to reclaim. On further inspection, I observed ~20k threads of that process stuck with the following stack: [<0>] mem_cgroup_out_of_memory+0x4e/0xa0 [<0>] charge_memcg+0x8bf/0x990 [<0>] mem_cgroup_swapin_charge_folio+0x4e/0x80 [<0>] __read_swap_cache_async+0x10c/0x260 [<0>] swapin_readahead+0x116/0x3f0 [<0>] do_swap_page+0x13c/0x1ce0 [<0>] handle_mm_fault+0x61d/0x11f0 [<0>] do_user_addr_fault+0x3e7/0x6d0 [<0>] exc_page_fault+0x8f/0x110 [<0>] asm_exc_page_fault+0x22/0x30 [<0>] __get_user_8+0x14/0x20 [<0>] futex_cleanup+0x27/0x1c0 [<0>] futex_exit_release+0x47/0x60 [<0>] do_exit+0x107/0x940 [<0>] do_group_exit+0x81/0xa0 [<0>] get_signal+0x2b1/0x6e0 [<0>] arch_do_signal_or_restart+0x1a/0x1c0 [<0>] exit_to_user_mode_loop+0xa8/0x1c0 [<0>] do_syscall_64+0x152/0x250 [<0>] entry_SYSCALL_64_after_hwframe+0x4b/0x53 In addition the dmesg was filled with "Out of memory and no killable processes..." messages. I have no idea why oom reaper was not able to reap/unmap the process. My guess is that since oom reaper tries to acquire mmap_lock in read mode limited number of times and then gives up, there might be a thread of that process which had mmap_lock in write mode at that time. My initial suspicion was the futex_cleanup and kernel page fault causing infinite fault and charge retries but that was put to rest in previous discussions happened on similar problem [1]. My current theory is that it is just a simple slow serialization behind the oom_lock. Unlike page allocator, memcg charge code takes the oom_lock without the "try". Though memcg oom code uses mutex_lock_killable(), note that in the call stack get_signal() consumes SIGKILL (or sigdelset(SIGKILL)) before calling do_group_exit(). So this mutex_lock_killable() is just a mutex_lock() here. Therefore 10s of thousands of threads are waiting on oom_lock and one by one they get -EFAULT from get_user() in the futex cleanup code and bails out. Discussion from [1] led to commit a75ffa26122b ("memcg, oom: do not bypass oom killer for dying tasks") which routes dying tasks into the OOM path precisely so the oom_reaper can reap their mm and free the memory asynchronously. But the reaper is best-effort and one-shot: if it cannot take mmap_lock for read (e.g. a sibling thread holds it for write) it sets MMF_OOM_SKIP and never retries, leaving only the glacial oom_lock-serialized synchronous drain. Once MMF_OOM_SKIP is set there is no more asynchronous reclaim coming for the mm, so a dying task charging against it has nothing left to wait for: it frees its memory only once it finishes exiting. Running reclaim and the (no-victim) OOM killer for it is then pointless, and doing it for 10s of thousands of exiting threads is what serializes them behind oom_lock. So before reclaim, if current is an OOM victim whose reaper is done, fail the charge. Reproduced with 20k threads, each parking a robust futex head on its own zswapped page, OOM-group-killed while a sibling holds mmap_lock for write so the reaper gives up and sets MMF_OOM_SKIP. Tested on next-20260728 and baseline show ~90 seconds exit time while with the patch the exit time reduced to ~3 seconds.
INFO
Published Date :
Sept. 24, 2026, 4:17 p.m.
Last Modified :
Sept. 25, 2026, 1:17 p.m.
Remotely Exploit :
No
Source :
416baaa9-dc9f-4396-8d5f-8c081fb06d67
Solution
- Update the Linux kernel to the patched version.
- Reboot affected systems after patching.
- Monitor system stability post-update.
- Verify patch application on critical systems.
References to Advisories, Solutions, and Tools
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CVE-2026-93241.
CWE - Common Weakness Enumeration
While CVE identifies
specific instances of vulnerabilities, CWE categorizes the common flaws or
weaknesses that can lead to vulnerabilities. CVE-2026-93241 is
associated with the following CWEs:
Common Attack Pattern Enumeration and Classification (CAPEC)
Common Attack Pattern Enumeration and Classification
(CAPEC)
stores attack patterns, which are descriptions of the common attributes and
approaches employed by adversaries to exploit the CVE-2026-93241
weaknesses.
We scan GitHub repositories to detect new proof-of-concept exploits. Following list is a collection of public exploits and proof-of-concepts, which have been published on GitHub (sorted by the most recently updated).
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The following list is the news that have been mention
CVE-2026-93241 vulnerability anywhere in the article.
The following table lists the changes that have been made to the
CVE-2026-93241 vulnerability over time.
Vulnerability history details can be useful for understanding the evolution of a vulnerability, and for identifying the most recent changes that may impact the vulnerability's severity, exploitability, or other characteristics.
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CVE Modified by 416baaa9-dc9f-4396-8d5f-8c081fb06d67
Sep. 25, 2026
Action Type Old Value New Value Added Affected Affected value modified. <a href="https://github.com/CVEProject/cvelistV5/blob/main/cves/2026/93xxx/CVE-2026-93241.json">CVE-2026-93241</a> -
New CVE Received by 416baaa9-dc9f-4396-8d5f-8c081fb06d67
Sep. 24, 2026
Action Type Old Value New Value Added Description In the Linux kernel, the following vulnerability has been resolved: memcg: bypass the reclaim and oom killer for dying tasks once oom_reaper is done At Meta, we are seeing instances where an OOM killed job is stuck in the exit path for several hours. In one particular case, the job was stuck for more than 8 hours and I had to manually remove the memory.max limits to allow the process to exit. The job was a single process job and had ~55 GiB memory.max and zswap enabled. It had almost 0 anon in memory and ~111 GiB in zswap compressed to ~51 GiB zswap pool (i.e. almost all of memory.current was zswap). Nothing was left on the LRUs to reclaim. On further inspection, I observed ~20k threads of that process stuck with the following stack: [<0>] mem_cgroup_out_of_memory+0x4e/0xa0 [<0>] charge_memcg+0x8bf/0x990 [<0>] mem_cgroup_swapin_charge_folio+0x4e/0x80 [<0>] __read_swap_cache_async+0x10c/0x260 [<0>] swapin_readahead+0x116/0x3f0 [<0>] do_swap_page+0x13c/0x1ce0 [<0>] handle_mm_fault+0x61d/0x11f0 [<0>] do_user_addr_fault+0x3e7/0x6d0 [<0>] exc_page_fault+0x8f/0x110 [<0>] asm_exc_page_fault+0x22/0x30 [<0>] __get_user_8+0x14/0x20 [<0>] futex_cleanup+0x27/0x1c0 [<0>] futex_exit_release+0x47/0x60 [<0>] do_exit+0x107/0x940 [<0>] do_group_exit+0x81/0xa0 [<0>] get_signal+0x2b1/0x6e0 [<0>] arch_do_signal_or_restart+0x1a/0x1c0 [<0>] exit_to_user_mode_loop+0xa8/0x1c0 [<0>] do_syscall_64+0x152/0x250 [<0>] entry_SYSCALL_64_after_hwframe+0x4b/0x53 In addition the dmesg was filled with "Out of memory and no killable processes..." messages. I have no idea why oom reaper was not able to reap/unmap the process. My guess is that since oom reaper tries to acquire mmap_lock in read mode limited number of times and then gives up, there might be a thread of that process which had mmap_lock in write mode at that time. My initial suspicion was the futex_cleanup and kernel page fault causing infinite fault and charge retries but that was put to rest in previous discussions happened on similar problem [1]. My current theory is that it is just a simple slow serialization behind the oom_lock. Unlike page allocator, memcg charge code takes the oom_lock without the "try". Though memcg oom code uses mutex_lock_killable(), note that in the call stack get_signal() consumes SIGKILL (or sigdelset(SIGKILL)) before calling do_group_exit(). So this mutex_lock_killable() is just a mutex_lock() here. Therefore 10s of thousands of threads are waiting on oom_lock and one by one they get -EFAULT from get_user() in the futex cleanup code and bails out. Discussion from [1] led to commit a75ffa26122b ("memcg, oom: do not bypass oom killer for dying tasks") which routes dying tasks into the OOM path precisely so the oom_reaper can reap their mm and free the memory asynchronously. But the reaper is best-effort and one-shot: if it cannot take mmap_lock for read (e.g. a sibling thread holds it for write) it sets MMF_OOM_SKIP and never retries, leaving only the glacial oom_lock-serialized synchronous drain. Once MMF_OOM_SKIP is set there is no more asynchronous reclaim coming for the mm, so a dying task charging against it has nothing left to wait for: it frees its memory only once it finishes exiting. Running reclaim and the (no-victim) OOM killer for it is then pointless, and doing it for 10s of thousands of exiting threads is what serializes them behind oom_lock. So before reclaim, if current is an OOM victim whose reaper is done, fail the charge. Reproduced with 20k threads, each parking a robust futex head on its own zswapped page, OOM-group-killed while a sibling holds mmap_lock for write so the reaper gives up and sets MMF_OOM_SKIP. Tested on next-20260728 and baseline show ~90 seconds exit time while with the patch the exit time reduced to ~3 seconds. Added Affected New affected value received. <a href="https://github.com/CVEProject/cvelistV5/blob/main/cves/2026/93xxx/CVE-2026-93241.json">CVE-2026-93241</a> Added Reference https://git.kernel.org/stable/c/6b0d1083364fc8e7cc2f7d1f93ee3ee78f4d52f7 Added Reference https://git.kernel.org/stable/c/801bcbdbfd595cc7f0de95f2802b5596c8971315 Added Reference https://git.kernel.org/stable/c/d44c3c5986c7a4a5f913a813e18cda08a838f91b