AlmaLinux 9.2 [TuxCare] セキュリティ更新プログラム:bpftool/kernel/kernel-abi-stablelists/kernel-core/etcの複数の脆弱性(ALMALINUX9.2:CLSA-2025:1738671431)

high Nessus プラグイン ID 352744

概要

AlmaLinuxホストに1つ以上のセキュリティ更新プログラムがありません。

説明

AlmaLinux 9.2 ホストには、TuxCare ALMALINUX9.2:CLSA-2025:1738671431アドバイザリに記載されている複数の脆弱性の影響を受けるパッケージがインストールされています。

- Linux カーネルでは、以下の脆弱性が解決されています: memcg: fix possible use-after-free in memcg_write_event_control() memcg_write_event_control() accesses the dentry->d_name of the specified control fd to route the write call. As a cgroup interface file can't be renamed, it's safe to access d_name as long as the specified file is a regular cgroup file. Also, as these cgroup interface files can't be removed before the directory, it's safe to access the parent too. Prior to 347c4a874710 (memcg: remove cgroup_event->cft), there was a call to __file_cft() which verified that the specified file is a regular cgroupfs file before further accesses. The cftype pointer returned from __file_cft() was no longer necessary and the commit inadvertently dropped the file type check with it allowing any file to slip through. With the invarients broken, the d_name and parent accesses can now race against renames and removals of arbitrary files and cause use-after-free's. Fix the bug by resurrecting the file type check in
__file_cft(). Now that cgroupfs is implemented through kernfs, checking the file operations needs to go through a layer of indirection. Instead, let's check the superblock and dentry type. (CVE-2022-48988)

- Linux カーネルでは、以下の脆弱性が解決されています: Input: powermate - fix use-after-free in powermate_config_complete syzbot has found a use-after-free bug [1] in the powermate driver. This happens when the device is disconnected, which leads to a memory free from the powermate_device struct.
When an asynchronous control message completes after the kfree and its callback is invoked, the lock does not exist anymore and hence the bug. Use usb_kill_urb() on pm->config to cancel any in-progress requests upon device disconnection. [1] https://syzkaller.appspot.com/bug?extid=0434ac83f907a1dbdd1e(CVE-2023-52475)

- Linux カーネルでは、以下の脆弱性が解決されています: x86/alternatives: Disable KASAN in apply_alternatives() Fei has reported that KASAN triggers during apply_alternatives() on a 5-level paging machine: BUG: KASAN: out-of-bounds in rcu_is_watching() Read of size 4 at addr ff110003ee6419a0 by task swapper/0/0 ... __asan_load4() rcu_is_watching() trace_hardirqs_on() text_poke_early() apply_alternatives() ... On machines with 5-level paging, cpu_feature_enabled(X86_FEATURE_LA57) gets patched. It includes KASAN code, where KASAN_SHADOW_START depends on __VIRTUAL_MASK_SHIFT, which is defined with cpu_feature_enabled(). KASAN gets confused when apply_alternatives() patches the KASAN_SHADOW_START users. A test patch that makes KASAN_SHADOW_START static, by replacing
__VIRTUAL_MASK_SHIFT with 56, works around the issue. Fix it for real by disabling KASAN while the kernel is patching alternatives. [ mingo: updated the changelog ] (CVE-2023-52504)

- Linux カーネルでは、以下の脆弱性が解決されています: HID: intel-ish-hid: ipc: Disable and reenable ACPI GPE bit The EHL (Elkhart Lake) based platforms provide a OOB (Out of band) service, which allows to wakup device when the system is in S5 (Soft-Off state). This OOB service can be enabled/disabled from BIOS settings. When enabled, the ISH device gets PME wake capability. To enable PME wakeup, driver also needs to enable ACPI GPE bit. On resume, BIOS will clear the wakeup bit. So driver need to re-enable it in resume function to keep the next wakeup capability. But this BIOS clearing of wakeup bit doesn't decrement internal OS GPE reference count, so this reenabling on every resume will cause reference count to overflow. So first disable and reenable ACPI GPE bit using acpi_disable_gpe(). (CVE-2023-52519)

- Linux カーネルでは、以下の脆弱性が解決されています: wifi: iwlwifi: mvm: Fix a memory corruption issue A few lines above, space is kzalloc()'ed for: sizeof(struct iwl_nvm_data) + sizeof(struct ieee80211_channel) + sizeof(struct ieee80211_rate) 'mvm->nvm_data' is a 'struct iwl_nvm_data', so it is fine. At the end of this structure, there is the 'channels' flex array. Each element is of type 'struct ieee80211_channel'. So only 1 element is allocated in this array. When doing:
mvm->nvm_data->bands[0].channels = mvm->nvm_data->channels; We point at the first element of the 'channels' flex array. So this is fine. However, when doing: mvm->nvm_data->bands[0].bitrates = (void
*)((u8 *)mvm->nvm_data->channels + 1); because of the (u8 *) cast, we add only 1 to the address of the beginning of the flex array. It is likely that we want point at the 'struct ieee80211_rate' allocated just after. Remove the spurious casting so that the pointer arithmetic works as expected. (CVE-2023-52531)

Nessus はこれらの問題をテストしておらず、代わりにアプリケーションが自己報告するバージョン番号にのみ依存していることに注意してください。

ソリューション

TuxCareアドバイザリALMALINUX9.2:CLSA-2025:1738671431のガイダンスに基づいて、影響を受けるパッケージを更新してください。

参考資料

https://cve.tuxcare.com/els/releases/CLSA-2025:1738671431

http://www.nessus.org/u?2bc67532

プラグインの詳細

深刻度: High

ID: 352744

ファイル名: tuxcare_alma_linux_9.2_CLSA-2025-1738671431.nasl

バージョン: 1.1

タイプ: Local

公開日: 2026/9/30

更新日: 2026/9/30

サポートされているセンサー: Continuous Assessment, Nessus Agent, Tenable Cloud Security, Tenable Self-Hosted Container Security, Nessus

リスク情報

VPR

リスクファクター: High

スコア: 8.9

パーセンタイル: 99.7

Vendor

Vendor Severity: Important

CVSS v2

リスクファクター: Medium

基本値: 6.8

現状値: 5.6

ベクトル: CVSS2#AV:L/AC:L/Au:S/C:C/I:C/A:C

CVSS スコアのソース: CVE-2024-56708

CVSS v3

リスクファクター: High

基本値: 7.8

現状値: 7.2

ベクトル: CVSS:3.0/AV:L/AC:L/PR:L/UI:N/S:U/C:H/I:H/A:H

現状ベクトル: CVSS:3.0/E:F/RL:O/RC:C

脆弱性情報

必要な KB アイテム: Host/OS/extended-third-party, Host/local_checks_enabled, Host/AlmaLinux/release, Host/AlmaLinux/rpm-list, Host/cpu

エクスプロイトが利用可能: true

エクスプロイトの容易さ: Exploits are available

パッチ公開日: 2025/2/4

脆弱性公開日: 2021/7/21

CISA の既知の悪用された脆弱性の期限日: 2025/4/30

参照情報

CVE: CVE-2022-48988, CVE-2023-52475, CVE-2023-52504, CVE-2023-52519, CVE-2023-52531, CVE-2023-52614, CVE-2023-52818, CVE-2024-26689, CVE-2024-26754, CVE-2024-27043, CVE-2024-35861, CVE-2024-35868, CVE-2024-36012, CVE-2024-41057, CVE-2024-41058, CVE-2024-49996, CVE-2024-50115, CVE-2024-50124, CVE-2024-50125, CVE-2024-50262, CVE-2024-50264, CVE-2024-53057, CVE-2024-53103, CVE-2024-53141, CVE-2024-53142, CVE-2024-53150, CVE-2024-53156, CVE-2024-53173, CVE-2024-53179, CVE-2024-56600, CVE-2024-56601, CVE-2024-56602, CVE-2024-56603, CVE-2024-56604, CVE-2024-56605, CVE-2024-56608, CVE-2024-56614, CVE-2024-56631, CVE-2024-56642, CVE-2024-56662, CVE-2024-56664, CVE-2024-56672, CVE-2024-56708

CLSA: 2025:1738671431