* Linux 6.18.41
@ 2026-07-30 11:19 Greg Kroah-Hartman
2026-07-30 11:19 ` Greg Kroah-Hartman
0 siblings, 1 reply; 2+ messages in thread
From: Greg Kroah-Hartman @ 2026-07-30 11:19 UTC (permalink / raw)
To: linux-kernel, akpm, torvalds, stable; +Cc: lwn, jslaby, Greg Kroah-Hartman
I'm announcing the release of the 6.18.41 kernel.
All users of the 6.18 kernel series must upgrade.
The updated 6.18.y git tree can be found at:
git://git.kernel.org/pub/scm/linux/kernel/git/stable/linux-stable.git linux-6.18.y
and can be browsed at the normal kernel.org git web browser:
https://git.kernel.org/?p=linux/kernel/git/stable/linux-stable.git;a=summary
thanks,
greg k-h
------------
Makefile | 2
kernel/exit.c | 7 +
kernel/signal.c | 10 +-
kernel/time/alarmtimer.c | 6 -
kernel/time/posix-cpu-timers.c | 185 +++++++++++++++++++++++++++--------------
kernel/time/posix-timers.c | 6 -
kernel/time/posix-timers.h | 4
7 files changed, 148 insertions(+), 72 deletions(-)
Greg Kroah-Hartman (1):
Linux 6.18.41
Thomas Gleixner (2):
posix-timers: Expand timer_[re]arm() callbacks with a boolean return value
posix-cpu-timers: Prevent UAF caused by non-leader exec() race
^ permalink raw reply [flat|nested] 2+ messages in thread
* Re: Linux 6.18.41
2026-07-30 11:19 Linux 6.18.41 Greg Kroah-Hartman
@ 2026-07-30 11:19 ` Greg Kroah-Hartman
0 siblings, 0 replies; 2+ messages in thread
From: Greg Kroah-Hartman @ 2026-07-30 11:19 UTC (permalink / raw)
To: linux-kernel, akpm, torvalds, stable; +Cc: lwn, jslaby, Greg Kroah-Hartman
diff --git a/Makefile b/Makefile
index aa1a53c513b4..f3c450a0a2fb 100644
--- a/Makefile
+++ b/Makefile
@@ -1,7 +1,7 @@
# SPDX-License-Identifier: GPL-2.0
VERSION = 6
PATCHLEVEL = 18
-SUBLEVEL = 40
+SUBLEVEL = 41
EXTRAVERSION =
NAME = Baby Opossum Posse
diff --git a/kernel/exit.c b/kernel/exit.c
index c832946823f4..a32bc65569a5 100644
--- a/kernel/exit.c
+++ b/kernel/exit.c
@@ -212,7 +212,12 @@ static void __exit_signal(struct release_task_post *post, struct task_struct *ts
__unhash_process(post, tsk, group_dead);
write_sequnlock(&sig->stats_lock);
- tsk->sighand = NULL;
+ /*
+ * Ensure that all preceeding state is visible. Pairs with
+ * the smp_acquire__after_ctrl_dep() in the sighand == NULL
+ * path of lock_task_sighand().
+ */
+ smp_store_release(&tsk->sighand, NULL);
spin_unlock(&sighand->siglock);
__cleanup_sighand(sighand);
diff --git a/kernel/signal.c b/kernel/signal.c
index 810098300ecd..e1843b71efff 100644
--- a/kernel/signal.c
+++ b/kernel/signal.c
@@ -1364,8 +1364,16 @@ struct sighand_struct *__lock_task_sighand(struct task_struct *tsk,
rcu_read_lock();
for (;;) {
sighand = rcu_dereference(tsk->sighand);
- if (unlikely(sighand == NULL))
+ if (unlikely(sighand == NULL)) {
+ /*
+ * Pairs with the smp_store_release() in
+ * __exit_signal(). It ensures that all state
+ * modifications to the task preceeding the store are
+ * visible to the callers of lock_task_sighand().
+ */
+ smp_acquire__after_ctrl_dep();
break;
+ }
/*
* This sighand can be already freed and even reused, but
diff --git a/kernel/time/alarmtimer.c b/kernel/time/alarmtimer.c
index 189ee8bbc3e6..525df334b15a 100644
--- a/kernel/time/alarmtimer.c
+++ b/kernel/time/alarmtimer.c
@@ -521,12 +521,13 @@ static void alarm_handle_timer(struct alarm *alarm, ktime_t now)
* alarm_timer_rearm - Posix timer callback for rearming timer
* @timr: Pointer to the posixtimer data struct
*/
-static void alarm_timer_rearm(struct k_itimer *timr)
+static bool alarm_timer_rearm(struct k_itimer *timr)
{
struct alarm *alarm = &timr->it.alarm.alarmtimer;
timr->it_overrun += alarm_forward_now(alarm, timr->it_interval);
alarm_start(alarm, alarm->node.expires);
+ return true;
}
/**
@@ -582,7 +583,7 @@ static void alarm_timer_wait_running(struct k_itimer *timr)
* @absolute: Expiry value is absolute time
* @sigev_none: Posix timer does not deliver signals
*/
-static void alarm_timer_arm(struct k_itimer *timr, ktime_t expires,
+static bool alarm_timer_arm(struct k_itimer *timr, ktime_t expires,
bool absolute, bool sigev_none)
{
struct alarm *alarm = &timr->it.alarm.alarmtimer;
@@ -594,6 +595,7 @@ static void alarm_timer_arm(struct k_itimer *timr, ktime_t expires,
alarm->node.expires = expires;
else
alarm_start(&timr->it.alarm.alarmtimer, expires);
+ return true;
}
/**
diff --git a/kernel/time/posix-cpu-timers.c b/kernel/time/posix-cpu-timers.c
index 99affd9e228e..2d64972fd080 100644
--- a/kernel/time/posix-cpu-timers.c
+++ b/kernel/time/posix-cpu-timers.c
@@ -19,7 +19,7 @@
#include "posix-timers.h"
-static void posix_cpu_timer_rearm(struct k_itimer *timer);
+static bool posix_cpu_timer_rearm(struct k_itimer *timer);
void posix_cputimers_group_init(struct posix_cputimers *pct, u64 cpu_limit)
{
@@ -461,6 +461,109 @@ static void disarm_timer(struct k_itimer *timer, struct task_struct *p)
trigger_base_recalc_expires(timer, p);
}
+/*
+ * Lookup the task via timer->it.cpu.pid and attempt to lock the task's sighand.
+ *
+ * This can race with the reaping of the task:
+ *
+ * CPU0 CPU1
+ *
+ * // Finds task
+ * p = pid_task(pid, pid_type); __exit_signal(p)
+ * lock(p, sighand);
+ * posix_cpu_timers*_exit();
+ * sighand = lock_task_sighand(p); unhash_task(p);
+ * p->sighand = NULL;
+ * unlock(sighand);
+ *
+ * In this case sighand is NULL, which means the task and the associated timer
+ * queue cannot be longer accessed safely.
+ *
+ * __exit_signal() invokes posix_cpu_timers_exit() and if the thread group is
+ * dead it also invokes posix_cpu_timers_group_exit(). These functions delete
+ * all pending timers from the related timer queues. The POSIX timers (k_itimer)
+ * themself are still accessible, but not longer connected to the task.
+ *
+ * exec() works slightly differently. The task which exec()'s terminates all
+ * other threads in the thread group and runs __exit_signal() on them. As the
+ * thread group is not dead they only clean up the per task timers via
+ * posix_cpu_timers_exit().
+ *
+ * As the TGID on exec() stays the same per process timers stay queued, if they
+ * are armed. This works without a problem when exec() is done by the thread
+ * group leader. If a non-leader thread exec()'s this can end up in the
+ * following scenario:
+ *
+ * CPU0 CPU1
+ * // Returns old leader
+ * p = pid_task(pid, pid_type); de_thread()
+ * switch_leader()
+ * release_task(old leader)
+ * __exit_signal()
+ * old_leader->sighand = NULL;
+ * // Returns NULL
+ * sighand = lock_task_sighand(p)
+ *
+ * That's problematic for several functions:
+ *
+ * - posix_cpu_timer_del(): If the timer is still enqueued on the task the
+ * underlying k_itimer will be freed which results in a UAF in
+ * run_posix_cpu_timers() or on timerqueue related add/delete operations.
+ * If the timer is not enqueued, the failure is harmless
+ *
+ * - posix_cpu_timer_set(): Independent of the enqueued state that results in a
+ * transient failure which is user space visible (-ESRCH) for regular posix
+ * timers. But for the use case in do_cpu_nanosleep() it's the same UAF
+ * problem just that the timer is allocated on the stack.
+ *
+ * - posix_cpu_timer_rearm(): Timer is not enqueued at that point, but this
+ * silently ignores the rearm request, which is a functional problem as the
+ * timer wont expire anymore.
+ */
+static struct task_struct *timer_lock_sighand(struct k_itimer *timer, unsigned long *flags)
+{
+ enum pid_type type = clock_pid_type(timer->it_clock);
+ struct cpu_timer *ctmr = &timer->it.cpu;
+
+ guard(rcu)();
+
+ for (;;) {
+ struct task_struct *t = pid_task(timer->it.cpu.pid, type);
+
+ /* Fail if the task cannot be found. */
+ if (!t)
+ break;
+
+ /* Try to lock the task's sighand */
+ if (lock_task_sighand(t, flags))
+ return t;
+
+ /*
+ * The next PID lookup might either fail or return the new
+ * leader. This is correct for both exit() and exec().
+ */
+ }
+
+ /*
+ * If the timer is still enqueued, warn. There is nothing safe to do
+ * here as there might be two timers in there which are removed in
+ * parallel and that will cause more damage than good. This should never
+ * happen!
+ *
+ * Ensure that the stores to the timer and timerqueue are visible:
+ *
+ * __exit_signal()
+ * posix_cpu_timers*_exit()
+ * write_seqlock(seqlock)
+ * smp_wmb(); <-------
+ * __unhash_process() | !pid_task()
+ * ----> smp_rmb();
+ * WARN_ON_ONCE(...)
+ */
+ smp_rmb();
+ WARN_ON_ONCE(ctmr->head || timerqueue_node_queued(&ctmr->node));
+ return NULL;
+}
/*
* Clean up a CPU-clock timer that is about to be destroyed.
@@ -470,29 +573,13 @@ static void disarm_timer(struct k_itimer *timer, struct task_struct *p)
*/
static int posix_cpu_timer_del(struct k_itimer *timer)
{
- struct cpu_timer *ctmr = &timer->it.cpu;
- struct sighand_struct *sighand;
struct task_struct *p;
unsigned long flags;
int ret = 0;
- rcu_read_lock();
- p = cpu_timer_task_rcu(timer);
- if (!p)
- goto out;
+ p = timer_lock_sighand(timer, &flags);
- /*
- * Protect against sighand release/switch in exit/exec and process/
- * thread timer list entry concurrent read/writes.
- */
- sighand = lock_task_sighand(p, &flags);
- if (unlikely(sighand == NULL)) {
- /*
- * This raced with the reaping of the task. The exit cleanup
- * should have removed this timer from the timer queue.
- */
- WARN_ON_ONCE(ctmr->head || timerqueue_node_queued(&ctmr->node));
- } else {
+ if (likely(p)) {
if (timer->it.cpu.firing) {
/*
* Prevent signal delivery. The timer cannot be dequeued
@@ -508,11 +595,8 @@ static int posix_cpu_timer_del(struct k_itimer *timer)
unlock_task_sighand(p, &flags);
}
-out:
- rcu_read_unlock();
-
if (!ret) {
- put_pid(ctmr->pid);
+ put_pid(timer->it.cpu.pid);
timer->it_status = POSIX_TIMER_DISARMED;
}
return ret;
@@ -626,21 +710,17 @@ static int posix_cpu_timer_set(struct k_itimer *timer, int timer_flags,
clockid_t clkid = CPUCLOCK_WHICH(timer->it_clock);
struct cpu_timer *ctmr = &timer->it.cpu;
u64 old_expires, new_expires, now;
- struct sighand_struct *sighand;
struct task_struct *p;
unsigned long flags;
int ret = 0;
- rcu_read_lock();
- p = cpu_timer_task_rcu(timer);
- if (!p) {
- /*
- * If p has just been reaped, we can no
- * longer get any information about it at all.
- */
- rcu_read_unlock();
+ p = timer_lock_sighand(timer, &flags);
+ /*
+ * If p has just been reaped, we can no longer get any information about
+ * it at all.
+ */
+ if (!p)
return -ESRCH;
- }
/*
* Use the to_ktime conversion because that clamps the maximum
@@ -648,20 +728,6 @@ static int posix_cpu_timer_set(struct k_itimer *timer, int timer_flags,
*/
new_expires = ktime_to_ns(timespec64_to_ktime(new->it_value));
- /*
- * Protect against sighand release/switch in exit/exec and p->cpu_timers
- * and p->signal->cpu_timers read/write in arm_timer()
- */
- sighand = lock_task_sighand(p, &flags);
- /*
- * If p has just been reaped, we can no
- * longer get any information about it at all.
- */
- if (unlikely(sighand == NULL)) {
- rcu_read_unlock();
- return -ESRCH;
- }
-
/* Retrieve the current expiry time before disarming the timer */
old_expires = cpu_timer_getexpires(ctmr);
@@ -698,7 +764,7 @@ static int posix_cpu_timer_set(struct k_itimer *timer, int timer_flags,
/* Retry if the timer expiry is running concurrently */
if (unlikely(ret)) {
unlock_task_sighand(p, &flags);
- goto out;
+ return ret;
}
/* Convert relative expiry time to absolute */
@@ -733,8 +799,6 @@ static int posix_cpu_timer_set(struct k_itimer *timer, int timer_flags,
*/
if (!sigev_none && new_expires && now >= new_expires)
cpu_timer_fire(timer);
-out:
- rcu_read_unlock();
return ret;
}
@@ -1011,24 +1075,20 @@ static void check_process_timers(struct task_struct *tsk,
/*
* This is called from the signal code (via posixtimer_rearm)
* when the last timer signal was delivered and we have to reload the timer.
+ *
+ * Return true unconditionally so the core code assumes the timer to be
+ * armed. Otherwise it would requeue the signal.
*/
-static void posix_cpu_timer_rearm(struct k_itimer *timer)
+static bool posix_cpu_timer_rearm(struct k_itimer *timer)
{
clockid_t clkid = CPUCLOCK_WHICH(timer->it_clock);
struct task_struct *p;
- struct sighand_struct *sighand;
unsigned long flags;
u64 now;
- rcu_read_lock();
- p = cpu_timer_task_rcu(timer);
- if (!p)
- goto out;
-
- /* Protect timer list r/w in arm_timer() */
- sighand = lock_task_sighand(p, &flags);
- if (unlikely(sighand == NULL))
- goto out;
+ p = timer_lock_sighand(timer, &flags);
+ if (unlikely(!p))
+ return true;
/*
* Fetch the current sample and update the timer's expiry time.
@@ -1045,8 +1105,7 @@ static void posix_cpu_timer_rearm(struct k_itimer *timer)
*/
arm_timer(timer, p);
unlock_task_sighand(p, &flags);
-out:
- rcu_read_unlock();
+ return true;
}
/**
diff --git a/kernel/time/posix-timers.c b/kernel/time/posix-timers.c
index 56e17b625c72..3082129d836c 100644
--- a/kernel/time/posix-timers.c
+++ b/kernel/time/posix-timers.c
@@ -295,12 +295,13 @@ static inline int timer_overrun_to_int(struct k_itimer *timr)
return (int)timr->it_overrun_last;
}
-static void common_hrtimer_rearm(struct k_itimer *timr)
+static bool common_hrtimer_rearm(struct k_itimer *timr)
{
struct hrtimer *timer = &timr->it.real.timer;
timr->it_overrun += hrtimer_forward_now(timer, timr->it_interval);
hrtimer_restart(timer);
+ return true;
}
static bool __posixtimer_deliver_signal(struct kernel_siginfo *info, struct k_itimer *timr)
@@ -802,7 +803,7 @@ SYSCALL_DEFINE1(timer_getoverrun, timer_t, timer_id)
return timer_overrun_to_int(scoped_timer);
}
-static void common_hrtimer_arm(struct k_itimer *timr, ktime_t expires,
+static bool common_hrtimer_arm(struct k_itimer *timr, ktime_t expires,
bool absolute, bool sigev_none)
{
struct hrtimer *timer = &timr->it.real.timer;
@@ -829,6 +830,7 @@ static void common_hrtimer_arm(struct k_itimer *timr, ktime_t expires,
if (!sigev_none)
hrtimer_start_expires(timer, HRTIMER_MODE_ABS);
+ return true;
}
static int common_hrtimer_try_to_cancel(struct k_itimer *timr)
diff --git a/kernel/time/posix-timers.h b/kernel/time/posix-timers.h
index 7f259e845d24..4ea9611dd716 100644
--- a/kernel/time/posix-timers.h
+++ b/kernel/time/posix-timers.h
@@ -27,11 +27,11 @@ struct k_clock {
int (*timer_del)(struct k_itimer *timr);
void (*timer_get)(struct k_itimer *timr,
struct itimerspec64 *cur_setting);
- void (*timer_rearm)(struct k_itimer *timr);
+ bool (*timer_rearm)(struct k_itimer *timr);
s64 (*timer_forward)(struct k_itimer *timr, ktime_t now);
ktime_t (*timer_remaining)(struct k_itimer *timr, ktime_t now);
int (*timer_try_to_cancel)(struct k_itimer *timr);
- void (*timer_arm)(struct k_itimer *timr, ktime_t expires,
+ bool (*timer_arm)(struct k_itimer *timr, ktime_t expires,
bool absolute, bool sigev_none);
void (*timer_wait_running)(struct k_itimer *timr);
};
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