CVE-2026-98163
Received Received - Intake

Race Condition in Linux Kernel Cgroup Subsystem Leading to Use-After-Free

Vulnerability report for CVE-2026-98163, including description, CVSS score, EPSS score, affected products, exploitability, helpful resources, and attack-flow context.

Publication date: 2026-09-26

Last updated on: 2026-09-26

Assigner: kernel.org

Description

In the Linux kernel, the following vulnerability has been resolved: cgroup: Avoid iteration of dying tasks with zero refcount The commit 260fbcb92bbea ("cgroup: Move dying_tasks cleanup from cgroup_task_release() to cgroup_task_free()") extended the lifetime of tasks on the dying_tasks list. The iterators have provision to go through dying_tasks because of dying threadgroup leaders or explicit CSS_TASK_ITER_WITH_DEAD, however, it was expected that such tasks can obtain a new reference (that is possible before cgroup_task_release()/put_task_struct_rcu_user()). The tasks after cgroup_task_release() and before cgroup_task_free() are subject to race when they may or may not have ->usage count > 0. The race window is between css_task_iter_next() invocations when css_set_lock is released and we may arrive at a new ->task_pos. The iterator should not attempt to resurrect tasks whose ->usage count dropped to zero. (When that happens, __put_task_struct_rcu_cb() is already imminent and the returned task_struct would could be used after free.) As for the fix, we cannot simply check the signal->live count of a task on the dying list because that won't distinguish regular zombies waiting to be reaped from RCU remnant tasks that are going to be free'd. Therefore add an extra check to rule out ->usage==0 tasks from any iteration. The repeat: loop in css_task_iter_advance() doesn't consider ->usage count, so add a new loop to css_task_iter_next() to skip de-used tasks on the dying_list. Rough illustration of the possible race R (reader of cgroup.procs) T (thread) L (group leader) --------------------------------- -------------------------------- -------------------------------- L exits, signal->live > 0 cgroup_task_dead(L) css_set_skip_task_iters() // skips only cset->tasks list_add_tail(&L->cg_list, &cset->dying_tasks) css_task_iter_next() take css_set_lock css_task_iter_advance() leader && signal->live != 0 => it->task_pos = &L->cg_list release css_set_lock T exits --signal->live == 0 cgroup_task_dead(T) // css_set_lock release_task(T) cgroup_task_release(T) release_task(L) // zap_leader cgroup_task_release(L) put_task_struct_rcu_user(L) ...RCU... put_task_struct(L) L->usage = 0 /* L still on dying_tasks */ ...RCU... __put_task_struct(L) css_task_iter_next() // another iteration take css_set_lock it->task_pos = &L->cg_list get_task_struct(L) => addition on 0 drop css_set_lock cgroup_task_free(L) css_set_skip_task_iters() // dying skip comes too late free_task(L) cgroup_procs_show() task_pid_vnr(L)

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Meta Information

Published
2026-09-26
Last Modified
2026-09-26
Generated
2026-09-26
AI Q&A
2026-09-26
EPSS Evaluated
N/A
NVD
EUVD

Affected Vendors & Products

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

Helpful Resources

Exploitability

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CWE ID Description
CWE-UNKNOWN

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Executive Summary

This vulnerability in the Linux kernel involves a race condition in the cgroup subsystem. When tasks are moved to a dying_tasks list, iterators may attempt to access tasks that have already dropped their reference count to zero. This can lead to use-after-free scenarios where the iterator tries to use a task_struct after it has been freed, potentially causing system instability or crashes.

Detection Guidance

This vulnerability is specific to the Linux kernel and requires kernel-level inspection. Detection involves checking kernel version and cgroup-related processes. Use commands like 'uname -r' to check kernel version and 'dmesg | grep cgroup' to look for cgroup-related errors. Monitor system logs for task-related crashes or hangs.

Impact Analysis

This vulnerability could allow local attackers to cause a denial of service (system crash) or potentially escalate privileges. The race condition may lead to memory corruption or unexpected behavior in the kernel, affecting system stability and security.

Compliance Impact

This vulnerability in the Linux kernel does not directly affect compliance with standards like GDPR or HIPAA. It is a race condition in the cgroup subsystem that could lead to use-after-free errors, which may cause system instability or crashes but does not inherently impact data protection or privacy compliance requirements.

Mitigation Strategies

Apply the latest kernel patches from your Linux distribution. Update to a kernel version that includes the fix for this issue. If immediate patching is not possible, restrict access to cgroup operations and monitor for unusual task behavior.

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