Логотип exploitDog
Консоль
Логотип exploitDog

exploitDog

fstec логотип

BDU:2026-12475

Опубликовано: 27 фев. 2026
Источник: fstec
CVSS3: 4.7
CVSS2: 3.8
EPSS Низкий

Описание

Уязвимость функции f81604_read_int_callback() модуля drivers/crypto/ccp/sev-dev-tsm.c драйвера криптографического ускорителя ядра операционной системы Linux связана с разыменованием указателя. Эксплуатация уязвимости может позволить нарушителю вызвать отказ в обслуживании

Вендор

Сообщество свободного программного обеспечения

Наименование ПО

Linux

Версия ПО

от 6.19 до 6.19.6 включительно (Linux)
от 6.18 до 6.18.16 включительно (Linux)

Тип ПО

Операционная система

Операционные системы и аппаратные платформы

Сообщество свободного программного обеспечения Linux от 6.19 до 6.19.6 включительно
Сообщество свободного программного обеспечения Linux от 6.18 до 6.18.16 включительно

Уровень опасности уязвимости

Низкий уровень опасности (базовая оценка CVSS 2.0 составляет 3,8)
Средний уровень опасности (базовая оценка CVSS 3.1 составляет 4,7)

Возможные меры по устранению уязвимости

В условиях отсутствия обновлений безопасности от производителя рекомендуется придерживаться "Рекомендаций по безопасной настройке операционных систем LINUX", изложенных в методическом документе ФСТЭК России, утверждённом 25 декабря 2022 года.
Использование рекомендаций:
Для Linux:
https://git.kernel.org/stable/c/7466ae2aeed483de80c5d8dea0913cf74038b652
https://git.kernel.org/stable/c/e67299e1044349ad0088d52c6bc5764cc1816c06
https://git.kernel.org/linus/869c63d5975d55e97f6b168e885452b3da20ea47

Статус уязвимости

Подтверждена производителем

Наличие эксплойта

Данные уточняются

Информация об устранении

Уязвимость устранена

Идентификаторы других систем описаний уязвимостей

EPSS

Процентиль: 0%
0.00088
Низкий

4.7 Medium

CVSS3

3.8 Low

CVSS2

Связанные уязвимости

CVSS3: 4.7
ubuntu
6 месяцев назад

In the Linux kernel, the following vulnerability has been resolved: bpf: Fix race in cpumap on PREEMPT_RT On PREEMPT_RT kernels, the per-CPU xdp_bulk_queue (bq) can be accessed concurrently by multiple preemptible tasks on the same CPU. The original code assumes bq_enqueue() and __cpu_map_flush() run atomically with respect to each other on the same CPU, relying on local_bh_disable() to prevent preemption. However, on PREEMPT_RT, local_bh_disable() only calls migrate_disable() (when PREEMPT_RT_NEEDS_BH_LOCK is not set) and does not disable preemption, which allows CFS scheduling to preempt a task during bq_flush_to_queue(), enabling another task on the same CPU to enter bq_enqueue() and operate on the same per-CPU bq concurrently. This leads to several races: 1. Double __list_del_clearprev(): after bq->count is reset in bq_flush_to_queue(), a preempting task can call bq_enqueue() -> bq_flush_to_queue() on the same bq when bq->count reaches CPU_MAP_BULK_SIZE. Both tasks then call __l...

redhat
6 месяцев назад

In the Linux kernel, the following vulnerability has been resolved: bpf: Fix race in cpumap on PREEMPT_RT On PREEMPT_RT kernels, the per-CPU xdp_bulk_queue (bq) can be accessed concurrently by multiple preemptible tasks on the same CPU. The original code assumes bq_enqueue() and __cpu_map_flush() run atomically with respect to each other on the same CPU, relying on local_bh_disable() to prevent preemption. However, on PREEMPT_RT, local_bh_disable() only calls migrate_disable() (when PREEMPT_RT_NEEDS_BH_LOCK is not set) and does not disable preemption, which allows CFS scheduling to preempt a task during bq_flush_to_queue(), enabling another task on the same CPU to enter bq_enqueue() and operate on the same per-CPU bq concurrently. This leads to several races: 1. Double __list_del_clearprev(): after bq->count is reset in bq_flush_to_queue(), a preempting task can call bq_enqueue() -> bq_flush_to_queue() on the same bq when bq->count reaches CPU_MAP_BULK_SIZE. Both tasks then call __l...

CVSS3: 4.7
nvd
6 месяцев назад

In the Linux kernel, the following vulnerability has been resolved: bpf: Fix race in cpumap on PREEMPT_RT On PREEMPT_RT kernels, the per-CPU xdp_bulk_queue (bq) can be accessed concurrently by multiple preemptible tasks on the same CPU. The original code assumes bq_enqueue() and __cpu_map_flush() run atomically with respect to each other on the same CPU, relying on local_bh_disable() to prevent preemption. However, on PREEMPT_RT, local_bh_disable() only calls migrate_disable() (when PREEMPT_RT_NEEDS_BH_LOCK is not set) and does not disable preemption, which allows CFS scheduling to preempt a task during bq_flush_to_queue(), enabling another task on the same CPU to enter bq_enqueue() and operate on the same per-CPU bq concurrently. This leads to several races: 1. Double __list_del_clearprev(): after bq->count is reset in bq_flush_to_queue(), a preempting task can call bq_enqueue() -> bq_flush_to_queue() on the same bq when bq->count reaches CPU_MAP_BULK_SIZE. Both tasks th

CVSS3: 4.7
debian
6 месяцев назад

In the Linux kernel, the following vulnerability has been resolved: b ...

CVSS3: 4.7
github
6 месяцев назад

In the Linux kernel, the following vulnerability has been resolved: bpf: Fix race in cpumap on PREEMPT_RT On PREEMPT_RT kernels, the per-CPU xdp_bulk_queue (bq) can be accessed concurrently by multiple preemptible tasks on the same CPU. The original code assumes bq_enqueue() and __cpu_map_flush() run atomically with respect to each other on the same CPU, relying on local_bh_disable() to prevent preemption. However, on PREEMPT_RT, local_bh_disable() only calls migrate_disable() (when PREEMPT_RT_NEEDS_BH_LOCK is not set) and does not disable preemption, which allows CFS scheduling to preempt a task during bq_flush_to_queue(), enabling another task on the same CPU to enter bq_enqueue() and operate on the same per-CPU bq concurrently. This leads to several races: 1. Double __list_del_clearprev(): after bq->count is reset in bq_flush_to_queue(), a preempting task can call bq_enqueue() -> bq_flush_to_queue() on the same bq when bq->count reaches CPU_MAP_BULK_SIZE. Both tasks...

EPSS

Процентиль: 0%
0.00088
Низкий

4.7 Medium

CVSS3

3.8 Low

CVSS2