<?xml version="1.0" encoding="UTF-8"?>
<cvrfdoc xmlns="http://www.icasi.org/CVRF/schema/cvrf/1.1" xmlns:cvrf="http://www.icasi.org/CVRF/schema/cvrf/1.1">
	<DocumentTitle xml:lang="en">An update for kernel is now available for openEuler-22.03-LTS-SP4</DocumentTitle>
	<DocumentType>Security Advisory</DocumentType>
	<DocumentPublisher Type="Vendor">
		<ContactDetails>openeuler-security@openeuler.org</ContactDetails>
		<IssuingAuthority>openEuler security committee</IssuingAuthority>
	</DocumentPublisher>
	<DocumentTracking>
		<Identification>
			<ID>openEuler-SA-2026-3317</ID>
		</Identification>
		<Status>Final</Status>
		<Version>1.0</Version>
		<RevisionHistory>
			<Revision>
				<Number>1.0</Number>
				<Date>2026-08-13</Date>
				<Description>Initial</Description>
			</Revision>
		</RevisionHistory>
		<InitialReleaseDate>2026-08-13</InitialReleaseDate>
		<CurrentReleaseDate>2026-08-13</CurrentReleaseDate>
		<Generator>
			<Engine>openEuler SA Tool V1.0</Engine>
			<Date>2026-08-13</Date>
		</Generator>
	</DocumentTracking>
	<DocumentNotes>
		<Note Title="Synopsis" Type="General" Ordinal="1" xml:lang="en">kernel security update</Note>
		<Note Title="Summary" Type="General" Ordinal="2" xml:lang="en">An update for kernel is now available for openEuler-22.03-LTS-SP4</Note>
		<Note Title="Description" Type="General" Ordinal="3" xml:lang="en">The Linux Kernel, the operating system core itself.

Security Fix(es):

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

drm/amdgpu: prevent immediate PASID reuse case

PASID resue could cause interrupt issue when process
immediately runs into hw state left by previous
process exited with the same PASID, it&apos;s possible that
page faults are still pending in the IH ring buffer when
the process exits and frees up its PASID. To prevent the
case, it uses idr cyclic allocator same as kernel pid&apos;s.

(cherry picked from commit 8f1de51f49be692de137c8525106e0fce2d1912d)(CVE-2026-31462)

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

media: hackrf: fix to not free memory after the device is registered in hackrf_probe()

In hackrf driver, the following race condition occurs:
```
		CPU0						CPU1
hackrf_probe()
  kzalloc(); // alloc hackrf_dev
  ....
  v4l2_device_register();
  ....
						fd = sys_open(&quot;/path/to/dev&quot;); // open hackrf fd
						....
  v4l2_device_unregister();
  ....
  kfree(); // free hackrf_dev
  ....
						sys_ioctl(fd, ...);
						  v4l2_ioctl();
						    video_is_registered() // UAF!!
						....
						sys_close(fd);
						  v4l2_release() // UAF!!
						    hackrf_video_release()
						      kfree(); // DFB!!
```

When a V4L2 or video device is unregistered, the device node is removed so
new open() calls are blocked.

However, file descriptors that are already open-and any in-flight I/O-do
not terminate immediately; they remain valid until the last reference is
dropped and the driver&apos;s release() is invoked.

Therefore, freeing device memory on the error path after hackrf_probe()
has registered dev it will lead to a race to use-after-free vuln, since
those already-open handles haven&apos;t been released yet.

And since release() free memory too, race to use-after-free and
double-free vuln occur.

To prevent this, if device is registered from probe(), it should be
modified to free memory only through release() rather than calling
kfree() directly.(CVE-2026-31576)

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

nilfs2: fix NULL i_assoc_inode dereference in nilfs_mdt_save_to_shadow_map

The DAT inode&apos;s btree node cache (i_assoc_inode) is initialized lazily
during btree operations. However, nilfs_mdt_save_to_shadow_map()
assumes i_assoc_inode is already initialized when copying dirty pages
to the shadow map during GC.

If NILFS_IOCTL_CLEAN_SEGMENTS is called immediately after mount before
any btree operation has occurred on the DAT inode, i_assoc_inode is
NULL leading to a general protection fault.

Fix this by calling nilfs_attach_btree_node_cache() on the DAT inode
in nilfs_dat_read() at mount time, ensuring i_assoc_inode is always
initialized before any GC operation can use it.(CVE-2026-31577)

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

media: as102: fix to not free memory after the device is registered in as102_usb_probe()

In as102_usb driver, the following race condition occurs:
```
		CPU0						CPU1
as102_usb_probe()
  kzalloc(); // alloc as102_dev_t
  ....
  usb_register_dev();
						fd = sys_open(&quot;/path/to/dev&quot;); // open as102 fd
						....
  usb_deregister_dev();
  ....
  kfree(); // free as102_dev_t
  ....
						sys_close(fd);
						  as102_release() // UAF!!
						    as102_usb_release()
						      kfree(); // DFB!!
```

When a USB character device registered with usb_register_dev() is later
unregistered (via usb_deregister_dev() or disconnect), the device node is
removed so new open() calls fail. However, file descriptors that are
already open do not go away immediately: they remain valid until the last
reference is dropped and the driver&apos;s .release() is invoked.

In as102, as102_usb_probe() calls usb_register_dev() and then, on an
error path, does usb_deregister_dev() and frees as102_dev_t right away.
If userspace raced a successful open() before the deregistration, that
open FD will later hit as102_release() --&gt; as102_usb_release() and access
or free as102_dev_t again, occur a race to use-after-free and
double-free vuln.

The fix is to never kfree(as102_dev_t) directly once usb_register_dev()
has succeeded. After deregistration, defer freeing memory to .release().

In other words, let release() perform the last kfree when the final open
FD is closed.(CVE-2026-31578)

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

fs/ntfs3: validate rec-&gt;used in journal-replay file record check

check_file_record() validates rec-&gt;total against the record size but
never validates rec-&gt;used.  The do_action() journal-replay handlers read
rec-&gt;used from disk and use it to compute memmove lengths:

  DeleteAttribute:    memmove(attr, ..., used - asize - roff)
  CreateAttribute:    memmove(..., attr, used - roff)
  change_attr_size:   memmove(..., used - PtrOffset(rec, next))

When rec-&gt;used is smaller than the offset of a validated attribute, or
larger than the record size, these subtractions can underflow allowing
us to copy huge amounts of memory in to a 4kb buffer, generally
considered a bad idea overall.

This requires a corrupted filesystem, which isn&apos;t a threat model the
kernel really needs to worry about, but checking for such an obvious
out-of-bounds value is good to keep things robust, especially on journal
replay

Fix this up by bounding rec-&gt;used correctly.

This is much like commit b2bc7c44ed17 (&quot;fs/ntfs3: Fix slab-out-of-bounds
read in DeleteIndexEntryRoot&quot;) which checked different values in this
same switch statement.(CVE-2026-31716)

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

PCI: Fix pci_slot_trylock() error handling

Commit a4e772898f8b (&quot;PCI: Add missing bridge lock to pci_bus_lock()&quot;)
delegates the bridge device&apos;s pci_dev_trylock() to pci_bus_trylock() in
pci_slot_trylock(), but it forgets to remove the corresponding
pci_dev_unlock() when pci_bus_trylock() fails.

Before a4e772898f8b, the code did:

  if (!pci_dev_trylock(dev)) /* &lt;- lock bridge device */
    goto unlock;
  if (dev-&gt;subordinate) {
    if (!pci_bus_trylock(dev-&gt;subordinate)) {
      pci_dev_unlock(dev);   /* &lt;- unlock bridge device */
      goto unlock;
    }
  }

After a4e772898f8b the bridge-device lock is no longer taken, but the
pci_dev_unlock(dev) on the failure path was left in place, leading to the
bug.

This yields one of two errors:

  1. A warning that the lock is being unlocked when no one holds it.
  2. An incorrect unlock of a lock that belongs to another thread.

Fix it by removing the now-redundant pci_dev_unlock(dev) on the failure
path.

[Same patch later posted by Keith at
https://patch.msgid.link/(CVE-2026-43211)

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

bpf: Free reuseport cBPF prog after RCU grace period.

Eulgyu Kim reported the splat below with a repro. [0]

The repro sets up a UDP reuseport group with a cBPF prog and
replaces it with a new one while another thread is sending
a UDP packet to the group.

The reuseport prog is freed by sk_reuseport_prog_free().
bpf_prog_put() is called for &quot;e&quot;BPF prog to destruct through
multiple stages while cBPF prog is freed immediately by
bpf_release_orig_filter() and bpf_prog_free().

If a reuseport prog is detached from the setsockopt() path
(reuseport_attach_prog() or reuseport_detach_prog()),
sk_reuseport_prog_free() is called without waiting for RCU
readers to complete, resulting in various bugs.

Let&apos;s defer freeing the reuseport cBPF prog after one RCU
grace period.

Note &quot;e&quot;BPF prog is safe as is unless the fast path starts
to touch fields destroyed in bpf_prog_put_deferred() and
__bpf_prog_put_noref().

[0]:
BUG: KASAN: vmalloc-out-of-bounds in reuseport_select_sock+0xedc/0x1220 net/core/sock_reuseport.c:596
Read of size 4 at addr ffffc9000051e004 by task slowme/10208
CPU: 6 UID: 1000 PID: 10208 Comm: slowme Not tainted 7.0.0-geb7ac95ff75e #32 PREEMPT(full)
Hardware name: QEMU Ubuntu 24.04 PC v2 (i440FX + PIIX, arch_caps fix, 1996), BIOS 1.16.3-debian-1.16.3-2 04/01/2014
Call Trace:
 &lt;IRQ&gt;
 dump_stack_lvl+0xe8/0x150 lib/dump_stack.c:120
 print_address_description mm/kasan/report.c:378 [inline]
 print_report+0xca/0x240 mm/kasan/report.c:482
 kasan_report+0x118/0x150 mm/kasan/report.c:595
 reuseport_select_sock+0xedc/0x1220 net/core/sock_reuseport.c:596
 udp4_lib_lookup2+0x3bc/0x950 net/ipv4/udp.c:495
 __udp4_lib_lookup+0x768/0xe20 net/ipv4/udp.c:723
 __udp4_lib_lookup_skb+0x297/0x390 net/ipv4/udp.c:752
 __udp4_lib_rcv+0x1312/0x2620 net/ipv4/udp.c:2752
 ip_protocol_deliver_rcu+0x282/0x440 net/ipv4/ip_input.c:207
 ip_local_deliver_finish+0x3bb/0x6f0 net/ipv4/ip_input.c:241
 NF_HOOK+0x30c/0x3a0 include/linux/netfilter.h:318
 NF_HOOK+0x30c/0x3a0 include/linux/netfilter.h:318
 __netif_receive_skb_one_core net/core/dev.c:6181 [inline]
 __netif_receive_skb net/core/dev.c:6294 [inline]
 process_backlog+0xaa4/0x1960 net/core/dev.c:6645
 __napi_poll+0xae/0x340 net/core/dev.c:7709
 napi_poll net/core/dev.c:7772 [inline]
 net_rx_action+0x5d7/0xf50 net/core/dev.c:7929
 handle_softirqs+0x22b/0x870 kernel/softirq.c:622
 do_softirq+0x76/0xd0 kernel/softirq.c:523
 &lt;/IRQ&gt;
 &lt;TASK&gt;
 __local_bh_enable_ip+0xf8/0x130 kernel/softirq.c:450
 local_bh_enable include/linux/bottom_half.h:33 [inline]
 rcu_read_unlock_bh include/linux/rcupdate.h:924 [inline]
 __dev_queue_xmit+0x1dd7/0x3710 net/core/dev.c:4890
 neigh_output include/net/neighbour.h:556 [inline]
 ip_finish_output2+0xca9/0x1070 net/ipv4/ip_output.c:237
 NF_HOOK_COND include/linux/netfilter.h:307 [inline]
 ip_output+0x29f/0x450 net/ipv4/ip_output.c:438
 ip_send_skb+0x45/0xc0 net/ipv4/ip_output.c:1508
 udp_send_skb+0xb04/0x1510 net/ipv4/udp.c:1195
 udp_sendmsg+0x1a71/0x2350 net/ipv4/udp.c:1485
 sock_sendmsg_nosec net/socket.c:727 [inline]
 __sock_sendmsg net/socket.c:742 [inline]
 __sys_sendto+0x554/0x680 net/socket.c:2206
 __do_sys_sendto net/socket.c:2213 [inline]
 __se_sys_sendto net/socket.c:2209 [inline]
 __x64_sys_sendto+0xde/0x100 net/socket.c:2209
 do_syscall_x64 arch/x86/entry/syscall_64.c:63 [inline]
 do_syscall_64+0x160/0xf80 arch/x86/entry/syscall_64.c:94
 entry_SYSCALL_64_after_hwframe+0x77/0x7f
RIP: 0033:0x415a2d
Code: b3 66 2e 0f 1f 84 00 00 00 00 00 66 90 f3 0f 1e fa 48 89 f8 48 89 f7 48 89 d6 48 89 ca 4d 89 c2 4d 89 c8 4c 8b 4c 24 08 0f 05 &lt;48&gt; 3d 01 f0 ff ff 73 01 c3 48 c7 c1 b8 ff ff ff f7 d8 64 89 01 48
RSP: 002b:00007f6bc31e41e8 EFLAGS: 00000212 ORIG_RAX: 000000000000002c
RAX: ffffffffffffffda RBX: 00007f6bc31e4cdc RCX: 0000000000415a2d
RDX: 0000000000000001 RSI: 00007f6bc31e421f RDI: 0000000000000003
RBP: 00007f6bc31e4240 R08: 00007f6bc31e4220 R09: 0000000000000010
R10: 0000000000000000 R11: 
---truncated---(CVE-2026-52910)

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

nvmet-tcp: propagate nvmet_tcp_build_pdu_iovec() errors to its callers

Currently, when nvmet_tcp_build_pdu_iovec() detects an out-of-bounds
PDU length or offset, it triggers nvmet_tcp_fatal_error(cmd-&gt;queue)
and returns early. However, because the function returns void, the
callers are entirely unaware that a fatal error has occurred and
that the cmd-&gt;recv_msg.msg_iter was left uninitialized.

Callers such as nvmet_tcp_handle_h2c_data_pdu() proceed to blindly
overwrite the queue state with queue-&gt;rcv_state = NVMET_TCP_RECV_DATA
Consequently, the socket receiving loop may attempt to read incoming
network data into the uninitialized iterator.

Fix this by shifting the error handling responsibility to the callers.(CVE-2026-52989)

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

Bluetooth: RFCOMM: hold listener socket in rfcomm_connect_ind()

rfcomm_get_sock_by_channel() scans rfcomm_sk_list under the list lock,
but returns the selected listener after dropping that lock without
taking a reference. rfcomm_connect_ind() then locks the listener,
queues a child socket on it, and may notify it after unlocking it.

The buggy scenario involves two paths, with each column showing the
order within that path:

rfcomm_connect_ind():            listener close:
  1. Find parent in              1. close() enters
     rfcomm_get_sock_by_channel()   rfcomm_sock_release().
  2. Drop rfcomm_sk_list.lock    2. rfcomm_sock_shutdown()
     without pinning parent.        closes the listener.
  3. Call lock_sock(parent) and  3. rfcomm_sock_kill()
     bt_accept_enqueue(parent,      unlinks and puts parent.
     sk, true).
  4. Read parent flags and may   4. parent can be freed.
     call sk_state_change().

If close wins the race, parent can be freed before
rfcomm_connect_ind() reaches lock_sock(), bt_accept_enqueue(), or the
deferred-setup callback.

Take a reference on the listener before leaving rfcomm_sk_list.lock.
After lock_sock() succeeds, recheck that it is still in BT_LISTEN
before queueing a child, cache the deferred-setup bit while the parent
is locked, and drop the reference after the last parent use.

KASAN reported a slab-use-after-free in lock_sock_nested() from
rfcomm_connect_ind(), with the freeing stack going through
rfcomm_sock_kill() and rfcomm_sock_release().(CVE-2026-53256)

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

btrfs: only release the dirty pages io tree after successful writes

[WARNING]
With extra warning on dirty extent buffers at umount (aka, the next
patch in the series), test case generic/388 can trigger the following
warning about dirty extent buffers at unmount time:

  BTRFS critical (device dm-2 state E): emergency shutdown
  BTRFS error (device dm-2 state E): error while writing out transaction: -30
  BTRFS warning (device dm-2 state E): Skipping commit of aborted transaction.
  BTRFS error (device dm-2 state EA): Transaction 9 aborted (error -30)
  BTRFS: error (device dm-2 state EA) in cleanup_transaction:2068: errno=-30 Readonly filesystem
  BTRFS info (device dm-2 state EA): forced readonly
  BTRFS info (device dm-2 state EA): last unmount of filesystem 4fbf2e15-f941-49a0-bc7c-716315d2777c
  ------------[ cut here ]------------
  WARNING: disk-io.c:3311 at invalidate_and_check_btree_folios+0xfd/0x1ca [btrfs], CPU#8: umount/914368
  CPU: 8 UID: 0 PID: 914368 Comm: umount Tainted: G           OE       7.1.0-rc1-custom+ #372 PREEMPT(full)  2de38db8d1deae71fde295430a0ff3ab98ccf596
  Hardware name: QEMU Standard PC (Q35 + ICH9, 2009), BIOS unknown 02/02/2022
  RIP: 0010:invalidate_and_check_btree_folios+0xfd/0x1ca [btrfs]
  Call Trace:
   &lt;TASK&gt;
   close_ctree+0x52e/0x574 [btrfs d2f0b1cd330d1287e7a9919d112eadfc0e914efd]
   generic_shutdown_super+0x89/0x1a0
   kill_anon_super+0x16/0x40
   btrfs_kill_super+0x16/0x20 [btrfs d2f0b1cd330d1287e7a9919d112eadfc0e914efd]
   deactivate_locked_super+0x2d/0xb0
   cleanup_mnt+0xdc/0x140
   task_work_run+0x5a/0xa0
   exit_to_user_mode_loop+0x123/0x4b0
   do_syscall_64+0x243/0x7c0
   entry_SYSCALL_64_after_hwframe+0x4b/0x53
   &lt;/TASK&gt;
  ---[ end trace 0000000000000000 ]---
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30539776 owner 9 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30621696 owner 257 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30638080 owner 258 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30654464 owner 7 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30703616 owner 2 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30720000 owner 10 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30736384 owner 4 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30752768 owner 11 gen 9 refs 2 flags 0x7

I&apos;m using a stripped down version, which seems to trigger the warning
more reliably:

  _fsstress_pid=&quot;&quot;
  workload()
  {
  	dmesg -C
  	mkfs.btrfs -f -K $dev &gt; /dev/null
  	echo 1 &gt; /sys/kernel/debug/clear_warn_once
  	mount $dev $mnt
  	$fsstress -w -n 1024 -p 4 -d $mnt &amp;
  	_fsstress_pid=$!
  	sleep 0
  	$godown $mnt
  	pkill --echo -PIPE fsstress &gt; /dev/null
  	wait $_fsstress_pid
  	unset _fsstress_pid
  	umount $mnt

  	if dmesg | grep -q &quot;WARNING&quot;; then
  		fail
  	fi
  }

  for (( i = 0; i &lt; $runtime; i++ )); do
  	echo &quot;=== $i/$runtime ===&quot;
  	workload
  done

[CAUSE]
Inside btrfs_write_and_wait_transaction(), we first try to write all
dirty ebs, then wait for them to finish.

After that we call btrfs_extent_io_tree_release() to free all
extent states from dirty_pages io tree.

However if we hit an error from btrfs_write_marked_extent(), then we
still call btrfs_extent_io_tree_release() to clear that dirty_pages io
tree, which may contain dirty records that we haven&apos;t yet submitted.

Furthermore, the later transaction cleanup path will utilize that
dirty_pages io tree to properly cleanup those dirty ebs, but since it&apos;s
already empty, no dirty ebs are properly cleaned up, thus will later
trigger the warnings inside invalidate_btree_folios().
---truncated---(CVE-2026-53284)

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

udf: reject descriptors with oversized CRC length

udf_read_tagged() skips CRC verification when descCRCLength +
sizeof(struct tag) exceeds the block size.  A crafted UDF image can
set descCRCLength to an oversized value to bypass CRC validation
entirely; the descriptor is then accepted based solely on the 8-bit
tag checksum, which is trivially recomputable.

Reject such descriptors instead of silently accepting them.  A
legitimate single-block descriptor should never have a CRC length that
exceeds the block.(CVE-2026-53369)

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

drm/amdgpu/vce: Prevent partial address patches

In the case that only one of lo/hi is valid, the patching could result
in a bad address written to in FW.(CVE-2026-53375)

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

ksmbd: fix out-of-bounds read in smb_check_perm_dacl()

The permission-check ACE walk in smb_check_perm_dacl() validates the ACE
header size and caps sid.num_subauth at SID_MAX_SUB_AUTHORITIES, but it
never checks that ace-&gt;size is actually large enough to contain
num_subauth sub-authorities before compare_sids() dereferences them.

CIFS_SID_BASE_SIZE covers the SID header up to but excluding the
sub_auth[] array, and offsetof(struct smb_ace, sid) is the ACE header,
so the existing guards only guarantee the 8-byte SID base, i.e. zero
sub-authorities. compare_sids() then reads ace-&gt;sid.sub_auth[i] for
i &lt; min(local_sid-&gt;num_subauth, ace-&gt;sid.num_subauth). The local
comparison SIDs (sid_everyone, sid_unix_NFS_mode, and the id_to_sid()
result) always have at least one sub-authority, and an attacker controls
the ACE revision and authority bytes (which lie within the in-bounds SID
base), so they can match one of those SIDs and force the sub_auth read.

A crafted ACE with size == 16 and num_subauth &gt;= 1 placed at the tail of
the security descriptor therefore causes a heap out-of-bounds read of up
to SID_MAX_SUB_AUTHORITIES * sizeof(__le32) bytes past the pntsd
allocation. The security descriptor is loaded by ksmbd_vfs_get_sd_xattr()
into a buffer sized exactly to the on-disk data (kzalloc(sd_size) in
ndr_decode_v4_ntacl()), so the read lands past the allocation. The
malformed descriptor can be stored verbatim via SMB2_SET_INFO (the DACL
is not normalised before being written to the security.NTACL xattr) and
the read fires on a subsequent SMB2_CREATE access check, making this
reachable by an authenticated client on a share that uses ACL xattrs.

Add the missing num_subauth-versus-ace_size check, mirroring the
identical guards already present in the sibling parsers parse_dacl() and
smb_inherit_dacl().(CVE-2026-53390)

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

nfsd: release layout stid on setlease failure

nfs4_alloc_stid() publishes the new stid into cl-&gt;cl_stateids via
idr_alloc_cyclic() under cl_lock before returning to
nfsd4_alloc_layout_stateid(). When nfsd4_layout_setlease() then
fails, the error path frees the layout stateid directly with
kmem_cache_free() without ever calling idr_remove(), leaving the
IDR slot pointing at freed slab memory. Any subsequent IDR walker
(states_show, client teardown) dereferences the dangling pointer.

The correct teardown for an IDR-published stid is nfs4_put_stid(),
which removes the IDR slot under cl_lock, dispatches sc_free
(nfsd4_free_layout_stateid) to release ls-&gt;ls_file via
nfsd4_close_layout(), and drops the nfs4_file reference in its
tail.

A second issue blocks that switch: nfsd4_free_layout_stateid()
unconditionally inspects ls-&gt;ls_fence_work via
delayed_work_pending() under ls_lock, but
INIT_DELAYED_WORK(&amp;ls-&gt;ls_fence_work, ...) currently runs only
after the setlease call. On the setlease-failure path the
destructor would touch an uninitialized delayed_work.

    nfsd4_alloc_layout_stateid()
      nfs4_alloc_stid()           /* idr_alloc_cyclic under cl_lock */
      nfsd4_layout_setlease()     /* fails */
        nfs4_put_stid()
          nfsd4_free_layout_stateid()
            delayed_work_pending(&amp;ls-&gt;ls_fence_work)  /* needs INIT */
            nfsd4_close_layout()  /* nfsd_file_put(ls-&gt;ls_file) */
          put_nfs4_file()

Fix by hoisting the ls_fenced / ls_fence_delay / INIT_DELAYED_WORK
initialization above the nfsd4_layout_setlease() call, and replace
the manual nfsd_file_put + put_nfs4_file + kmem_cache_free cleanup
with a single nfs4_put_stid(stp).(CVE-2026-53399)

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

KVM: SVM: Fix page overflow in sev_dbg_crypt() for ENCRYPT path

In sev_dbg_crypt(), the per-iteration transfer length is bounded by
the source page offset (PAGE_SIZE - s_off) but not by the destination
page offset (PAGE_SIZE - d_off).  When d_off &gt; s_off, the encrypt
path (__sev_dbg_encrypt_user) performs a read-modify-write using a
single-page intermediate buffer (dst_tpage):

  1. __sev_dbg_decrypt() expands the size to round_up(len + (d_off &amp; 15), 16)
     before issuing the PSP command.  If len + (d_off &amp; 15) &gt; PAGE_SIZE,
     the PSP writes beyond the end of the 4096-byte dst_tpage allocation.

  2. The subsequent memcpy()/copy_from_user() into
     page_address(dst_tpage) + (d_off &amp; 15) of &apos;len&apos; bytes overflows
     by up to 15 bytes under the same condition.

Trigger example: s_off = 0, d_off = 1, debug.len = PAGE_SIZE -
the PSP is instructed to write round_up(4097, 16) = 4112 bytes to
a 4096-byte buffer.

Fix by also bounding len by (PAGE_SIZE - d_off), the same check that
sev_send_update_data() already performs for its single-page guest
region.

 ==================================================================
 BUG: KASAN: slab-use-after-free in sev_dbg_crypt+0x993/0xd10 [kvm_amd]
 Write of size 4095 at addr ff110062293bb009 by task sev_dbg_test/228214

 CPU: 96 UID: 0 PID: 228214 Comm: sev_dbg_test Tainted: G     U  W           7.0.0-smp--5ce9b0c48211-dbg #156 PREEMPTLAZY
 Tainted: [U]=USER, [W]=WARN
 Hardware name: Google Astoria/astoria, BIOS 0.20250817.1-0 08/25/2025
 Call Trace:
  &lt;TASK&gt;
  dump_stack_lvl+0x54/0x70
  print_report+0xbc/0x260
  kasan_report+0xa2/0xd0
  kasan_check_range+0x25f/0x2c0
  __asan_memcpy+0x40/0x70
  sev_dbg_crypt+0x993/0xd10 [kvm_amd]
  sev_mem_enc_ioctl+0x33c/0x450 [kvm_amd]
  kvm_vm_ioctl+0x65d/0x6d0 [kvm]
  __se_sys_ioctl+0xb2/0x100
  do_syscall_64+0xe8/0x870
  entry_SYSCALL_64_after_hwframe+0x4b/0x53
  &lt;/TASK&gt;

 The buggy address belongs to the physical page:
 page: refcount:1 mapcount:0 mapping:0000000000000000 index:0x7fe72b6a0 pfn:0x62293bb
 memcg:ff11000112827d82
 flags: 0x1400000000000000(node=1|zone=1)
 raw: 1400000000000000 0000000000000000 dead000000000122 0000000000000000
 raw: 00000007fe72b6a0 0000000000000000 00000001ffffffff ff11000112827d82
 page dumped because: kasan: bad access detected

 Memory state around the buggy address:
  ff110062293bbf00: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
  ff110062293bbf80: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
 &gt;ff110062293bc000: fa fb fb fb fb fb fb fb fc fc fc fc fc fc fc fc
                    ^
  ff110062293bc080: fa fb fb fb fb fb fb fb fc fc fc fc fc fc fc fc
  ff110062293bc100: fa fb fb fb fb fb fb fb fc fc fc fc fc fc fc fc
 ==================================================================
 Disabling lock debugging due to kernel taint

[sean: add sample KASAN splat, Fixes, and stable@](CVE-2026-63794)

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

ocfs2: reject oversized group bitmap descriptors

ocfs2_validate_gd_parent() only bounds bg_bits against the parent
allocator&apos;s chain geometry.  A malicious descriptor can still claim a
bg_size/bg_bits pair that exceeds the bitmap bytes that physically fit in
the group descriptor block, so later bitmap scans and bit updates can run
past bg_bitmap.

Add a physical-cap check based on ocfs2_group_bitmap_size() for the parent
allocator type and reject descriptors whose bg_size or bg_bits exceed that
capacity.  Keep the existing chain geometry check so both the on-disk
bitmap layout and the allocator metadata must agree before the descriptor
is used.

Validation reproduced this kernel report:
KASAN use-after-free in _find_next_bit+0x7f/0xc0
Read of size 8
Call trace:
  dump_stack_lvl+0x66/0xa0 (?:?)
  print_report+0xd0/0x630 (?:?)
  _find_next_bit+0x7f/0xc0 (?:?)
  srso_alias_return_thunk+0x5/0xfbef5 (?:?)
  __virt_addr_valid+0x188/0x2f0 (?:?)
  kasan_report+0xe4/0x120 (?:?)
  ocfs2_find_max_contig_free_bits+0x35/0x70 (fs/ocfs2/suballoc.c:1375)
  ocfs2_block_group_set_bits+0x472/0x4b0 (fs/ocfs2/suballoc.c:1457)
  ocfs2_cluster_group_search+0x16b/0x440 (fs/ocfs2/suballoc.c:86)
  ocfs2_bg_discontig_fix_result+0x1ef/0x230 (fs/ocfs2/suballoc.c:1786)
  ocfs2_search_chain+0x8f8/0x10a0 (fs/ocfs2/suballoc.c:1886)
  get_page_from_freelist+0x70e/0x2370 (?:?)
  lock_release+0xc6/0x290 (?:?)
  do_raw_spin_unlock+0x9a/0x100 (?:?)
  kasan_unpoison+0x27/0x60 (?:?)
  __bfs+0x147/0x240 (?:?)
  get_page_from_freelist+0x83d/0x2370 (?:?)
  ocfs2_claim_suballoc_bits+0x38c/0xe70 (fs/ocfs2/suballoc.c:96)
  sched_domains_numa_masks_clear+0x70/0xd0 (?:?)
  check_irq_usage+0xe8/0xb70 (?:?)
  __ocfs2_claim_clusters+0x18d/0x4c0 (fs/ocfs2/suballoc.c:2497)
  check_path+0x24/0x50 (?:?)
  rcu_is_watching+0x20/0x50 (?:?)
  check_prev_add+0xfd/0xd00 (?:?)
  ocfs2_add_clusters_in_btree+0x17d/0x810 (fs/ocfs2/suballoc.c:?)
  __folio_batch_add_and_move+0x1f5/0x3d0 (?:?)
  ocfs2_add_inode_data+0xd9/0x120 (fs/ocfs2/suballoc.c:?)
  filemap_add_folio+0x105/0x1f0 (?:?)
  ocfs2_write_begin_nolock+0x29f7/0x2f80 (fs/ocfs2/suballoc.c:3043)
  ocfs2_read_inode_block+0xb5/0x110 (fs/ocfs2/suballoc.c:?)
  down_write+0xf5/0x180 (?:?)
  ocfs2_write_begin+0x180/0x240 (fs/ocfs2/suballoc.c:?)
  __mark_inode_dirty+0x758/0x9a0 (?:?)
  inode_to_bdi+0x41/0x90 (?:?)
  balance_dirty_pages_ratelimited_flags+0xf8/0x1d0 (?:?)
  generic_perform_write+0x252/0x440 (?:?)
  mnt_put_write_access_file+0x16/0x70 (?:?)
  file_update_time_flags+0xe4/0x200 (?:?)
  ocfs2_file_write_iter+0x80a/0x1320 (fs/ocfs2/suballoc.c:?)
  lock_acquire+0x184/0x2f0 (?:?)
  ksys_write+0xd2/0x170 (?:?)
  apparmor_file_permission+0xf5/0x310 (?:?)
  read_zero+0x8d/0x140 (?:?)
  lock_is_held_type+0x8f/0x100 (?:?)(CVE-2026-63796)

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

KVM: x86/mmu: Ensure hugepage is in by slot before checking max mapping level

When recovering hugepages in the shadow MMU, verify that the base gfn of
the shadow page is actually contained within the target memslot, *before*
querying the max mapping level given the shadow page&apos;s gfn.  Failure to
pre-check the validity of the gfn can lead to an out-of-bounds access to
the slot&apos;s lpage_info (which typically manifests as a host #PF because the
lpage_info is vmalloc&apos;d) if the guest creates a hugepage mapping (in its
PTEs) that extends &quot;below&quot; the bounds of a memslot.

When faulting in memory for a guest, and the size of the guest mapping is
greater than KVM&apos;s (current) max mapping, then KVM will create a &quot;direct&quot;
shadow page (direct in that there are no gPTEs to shadow, and so the target
gfn is a direct calculation given the base gfn of the shadow page).  The
hugepage recovery flow looks for such direct shadow pages, as forcing 4KiB
mappings when dirty logging generates the guest &gt; host mapping size case.
When the 4KiB restriction is lifted, then KVM can replace the shadow page
with a hugepage.

But if KVM originally used a smaller mapping than the guest because the
range of memory covered by the guest hugepage exceeds the bounds of a
memslot, then KVM will link a direct shadow page with a gfn that is outside
the bounds of the memslot being used to fault in memory.  The rmap entry
added for the leaf mapping is correct and within bounds, but the gfn of the
leaf SPTE&apos;s parent shadow page will be out of bounds.

  BUG: unable to handle page fault for address: ffffc90000806ffc
  #PF: supervisor read access in kernel mode
  #PF: error_code(0x0000) - not-present page
  PGD 100000067 P4D 100000067 PUD 1002a7067 PMD 10612f067 PTE 0
  Oops: Oops: 0000 [#1] SMP
  CPU: 13 UID: 1000 PID: 757 Comm: mmu_stress_test Not tainted 7.1.0-rc1-48ce1e26eace-x86_pir_to_irr_comments-vm #341 PREEMPT
  Hardware name: QEMU Standard PC (Q35 + ICH9, 2009), BIOS 0.0.0 02/06/2015
  RIP: 0010:kvm_mmu_max_mapping_level+0x79/0x2b0 [kvm]
  Call Trace:
   &lt;TASK&gt;
   kvm_mmu_recover_huge_pages+0x21b/0x320 [kvm]
   kvm_set_memslot+0x1ee/0x590 [kvm]
   kvm_set_memory_region.part.0+0x3a1/0x4d0 [kvm]
   kvm_vm_ioctl+0x9bf/0x15d0 [kvm]
   __x64_sys_ioctl+0x8a/0xd0
   do_syscall_64+0xb7/0xbb0
   entry_SYSCALL_64_after_hwframe+0x4b/0x53
  RIP: 0033:0x7f21c0f1a9bf
   &lt;/TASK&gt;

Don&apos;t bother pre-checking the bounds of the potential hugepage, i.e. don&apos;t
check that e.g. sp-&gt;gfn + KVM_PAGES_PER_HPAGE(sp-&gt;role.level + 1) is also
within the memslot, as the checks performed by kvm_mmu_max_mapping_level()
are a superset of the basic bounds checks.  I.e. pre-checking the full
range would be a dubious micro-optimization.(CVE-2026-63807)

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

keys: Pin request_key_auth payload in instantiate paths

A: request_key()       B: KEYCTL_INSTANTIATE_IOV
================       =========================

create auth key
store rka in auth key
wait for helper
                       get auth key
                       load rka from auth key
                       copy user payload
                       sleep on #PF

helper completed
detach and free rka
destroy auth key
                       wake up
                       use rka-&gt;target_key
                       **USE-AFTER-FREE**

Give request_key_auth payloads a refcount.  Take a payload reference while
authkey-&gt;sem stabilizes the payload and revocation state.  Hold that
reference across the instantiate and reject paths.  Drop the auth key
owning reference from revoke and destroy.

[jarkko: Replaced the first two paragraphs of text with an actual
 concurrency scenario.](CVE-2026-63823)

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

USB: serial: mct_u232: fix memory corruption with small endpoint

The driver overrides the maximum transfer size for a specific device
which only accepts 16 byte packets for its 32 byte bulk-out endpoint.

Make sure to never increase the maximum transfer size to prevent slab
corruption should a malicious device report a smaller endpoint max
packet size than expected.(CVE-2026-63898)

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

KVM: SEV: Ignore Port I/O requests of length &apos;0&apos;

Explicitly ignore Port I/O requests of length &apos;0&apos; (or count &apos;0&apos;), so that
setting up the software scratch area (and other code) doesn&apos;t have to
worry about underflowing the length, and to allow for WARNing on trying
to configure the scratch area with len==0.(CVE-2026-63940)

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

ixgbevf: fix use-after-free in VEPA multicast source pruning

ixgbevf_clean_rx_irq() prunes frames whose source MAC matches the VF&apos;s
own address (VEPA multicast workaround) by freeing the skb and
continuing to the next descriptor:

    dev_kfree_skb_irq(skb);
    continue;

The skb pointer is declared outside the while loop and persists across
iterations.  Because the continue skips the &quot;skb = NULL&quot; reset at the
bottom of the loop, the next iteration enters the &quot;else if (skb)&quot; path
and calls ixgbevf_add_rx_frag() on the freed skb, dereferencing
skb_shinfo(skb)-&gt;nr_frags - a use-after-free in NAPI softirq context.

The sibling driver iavf already handles this correctly by nulling the
pointer before continuing.  Apply the same pattern here.

I do not have ixgbevf hardware; the bug was found by static analysis
(scan_drop_continue_loops.py + semgrep drop_continue_in_loop, multi-tool
corroboration with the highest score in the scan).  The UAF was confirmed
under KASAN by loading a test module that reproduces the exact code
pattern (alloc skb, kfree_skb, then read skb_shinfo(skb)-&gt;nr_frags):

  BUG: KASAN: slab-use-after-free in ixgbevf_uaf_test_init+0x100/0x1000
  Read of size 8 at addr 000000006163ae78 by task insmod/30
  freed 208-byte region [000000006163adc0, 000000006163ae90)

QEMU emulates igb (82576) but not ixgbe (82599), and the igbvf VF
driver does not include the VEPA source pruning path, so a full
end-to-end reproduction with emulated hardware was not possible.(CVE-2026-64113)

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

vsock/vmci: fix UAF when peer resets connection during handshake

vmci_transport_recv_connecting_server() returned err = 0 for a peer
RST in its default switch arm:

	err = pkt-&gt;type == VMCI_TRANSPORT_PACKET_TYPE_RST ? 0 : -EINVAL;

That made vmci_transport_recv_listen() skip vsock_remove_pending(),
leaving the pending socket on the listener&apos;s pending_links with
sk_state = TCP_CLOSE while destroy: still dropped the explicit
reference taken before schedule_delayed_work().

One second later vsock_pending_work() observed is_pending=true and
performed full cleanup: vsock_remove_pending() then the two trailing
sock_put(sk) calls -- the first reached refcount 0 and __sk_freed
the socket, and the second wrote into the freed object:

  BUG: KASAN: slab-use-after-free in refcount_warn_saturate
  Write of size 4 at addr ffff88800b1cac80 by task kworker
  Workqueue: events vsock_pending_work

Treat peer RST like any other unexpected packet type (err = -EINVAL).
All destroy: arms now return err &lt; 0, so vmci_transport_recv_listen()
removes pending from pending_links synchronously and
vsock_pending_work() takes the is_pending=false / !rejected branch,
dropping only its own work reference.  This also closes the
multi-packet race Sashiko reported on v2: pending is removed from
the list before any subsequent packet can find it.

The pre-existing sk_acceptq_removed() gap on the err &lt; 0 path of
vmci_transport_recv_listen() that Sashiko also noted is not
introduced or changed by this patch.

Tested on lts-6.12.79 with KASAN: 52/100 unpatched -&gt; 0/100 patched.(CVE-2026-64115)

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

Bluetooth: bnep: Fix UAF read of dev-&gt;name

bnep_add_connection() needs to keep holding the bnep_session_sem while
reading dev-&gt;name (just like bnep_get_connlist() does); otherwise the
bnep_session() thread can concurrently free the net_device, which can for
example be triggered by a concurrent bnep_del_connection().

(This UAF is fairly uninteresting from a security perspective;
calling bnep_add_connection() requires passing a capable(CAP_NET_ADMIN)
check. It also requires completely tearing down a netdev during a fairly
tight race window.)(CVE-2026-64178)

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

crypto: qat - protect service table iterations with service_lock

The service_table list is protected by service_lock when entries are
added or removed (in adf_service_add() and adf_service_remove()), but
several functions iterate over the list without holding this lock.

A concurrent adf_service_register() or adf_service_unregister() call
could modify the list during traversal, leading to list corruption or
a use-after-free.

Fix this by holding service_lock across all list_for_each_entry()
iterations of service_table in adf_dev_init(), adf_dev_start(),
adf_dev_stop(), adf_dev_shutdown(), adf_dev_restarting_notify(),
adf_dev_restarted_notify(), and adf_error_notifier().

The lock ordering is safe: callers of the static helpers (adf_dev_up()
and adf_dev_down()) acquire state_lock before service_lock, and no
event_hld callback or service_lock holder ever acquires state_lock in
the reverse order.(CVE-2026-64305)

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

nvmet: fix pre-auth out-of-bounds heap read in Discovery Get Log Page

nvmet_execute_disc_get_log_page() validates only the dword alignment
of the host-supplied Log Page Offset (lpo).  The 64-bit offset is then
added to a small kzalloc&apos;d buffer that holds the discovery log page
and the result is passed straight to nvmet_copy_to_sgl(), which
memcpy()s data_len bytes out to the host with no source-side bound
check:

    u64 offset      = nvmet_get_log_page_offset(req-&gt;cmd);  /* 64-bit host */
    size_t data_len = nvmet_get_log_page_len(req-&gt;cmd);     /* 32-bit host */
    ...
    if (offset &amp; 0x3) { ... }                               /* only check */
    ...
    alloc_len = sizeof(*hdr) + entry_size * discovery_log_entries(req);
    buffer = kzalloc(alloc_len, GFP_KERNEL);
    ...
    status = nvmet_copy_to_sgl(req, 0, buffer + offset, data_len);

The Discovery controller is unauthenticated -- nvmet_host_allowed()
returns true unconditionally for the discovery subsystem -- so the call
is reachable pre-authentication by any TCP/RDMA/FC peer that can reach
the nvmet target.  With a discovery log page of ~1 KiB, an attacker
requesting up to 4 KiB starting at offset == alloc_len reads the next
slab page out and gets its content returned over the fabric (an
empirical run on a default nvmet-tcp loopback target leaked 81
canonical kernel pointers in one Get Log Page response).  Pointing the
offset at unmapped kernel memory faults the in-kernel memcpy and
crashes (or panics, on panic_on_oops=1) the target host instead.

The attacker-controlled source-side offset pattern
&quot;nvmet_copy_to_sgl(req, 0, buffer + ATTACKER_OFFSET, ...)&quot; is unique
to nvmet_execute_disc_get_log_page in the entire nvmet codebase: every
other Get Log Page handler in admin-cmd.c either ignores lpo (and
silently starts every response at offset 0) or tracks a local
destination offset with a fixed source pointer.

Validate the host-supplied offset against the log page size, cap the
copy length to what is actually available, and zero-fill any remainder
of the host transfer buffer.  The zero-fill matches the existing
short-response pattern in nvmet_execute_get_log_changed_ns()
(admin-cmd.c) and prevents leaking transport SGL contents when the
host asks for more bytes than the log page contains.(CVE-2026-64320)

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

udf: validate sparing table length as an entry count, not a byte count

udf_load_sparable_map() accepts a sparing table when

	sizeof(*st) + le16_to_cpu(st-&gt;reallocationTableLen) &gt; sb-&gt;s_blocksize

is false, i.e. it treats reallocationTableLen as a number of BYTES that
must fit in the block.  But the table is walked as an array of 8-byte
sparingEntry elements:

	for (i = 0; i &lt; le16_to_cpu(st-&gt;reallocationTableLen); i++) {
		struct sparingEntry *entry = &amp;st-&gt;mapEntry[i];
		... entry-&gt;origLocation ...
	}

in udf_get_pblock_spar15() and udf_relocate_blocks().  A
reallocationTableLen of N therefore passes the check whenever
sizeof(*st) + N &lt;= blocksize, yet the consumers index
sizeof(*st) + N * sizeof(struct sparingEntry) bytes -- up to ~8x the
block.  On a crafted UDF image this is an out-of-bounds read in
udf_get_pblock_spar15(); udf_relocate_blocks() additionally feeds the
same length to udf_update_tag(), whose crc_itu_t() reads far past the
block, and its memmove() through st-&gt;mapEntry[] is an out-of-bounds
write.

Validate reallocationTableLen as the entry count it is, with
struct_size().(CVE-2026-64322)

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

proc: protect ptrace_may_access() with exec_update_lock (FD links)

proc_pid_get_link() and proc_pid_readlink() currently look up the task from
the pid once, then do the ptrace access check on that task, then look up
the task from the pid a second time to do the actual access.
That&apos;s racy in several ways.

To fix it, pass the task to the -&gt;proc_get_link() handler, and instead of
proc_fd_access_allowed(), introduce a new helper call_proc_get_link() that
looks up and locks the task, does the access check, and calls
-&gt;proc_get_link().(CVE-2026-64375)

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

smb: client: mask server-provided mode to 07777 in modefromsid

When modefromsid is active, parse_dacl() applies the server-provided
sub_auth[2] value from the NFS mode SID to cf_mode without masking to
07777. Apply the correct masking, same as in the read path.(CVE-2026-64379)

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

smb: client: harden POSIX SID length parsing

posix_info_sid_size() reads sid[1] to obtain the subauthority count,
but its existing boundary check still accepts buffers with only one
remaining byte. Require two bytes before reading sid[1] so all client
paths that reuse the helper reject truncated POSIX SIDs safely.(CVE-2026-64380)

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

fs/ntfs3: validate Dirty Page Table capacity in log_replay copy_lcns

In the analysis pass of $LogFile journal replay, log_replay() copies
LCNs from each action log record into an existing Dirty Page Table
(DPT) entry without bounding the destination index. A crafted NTFS
image with DPT entry lcns_follow=1 and an action log record with
lcns_follow=2 produces a kernel slab out-of-bounds write at mount
time:

  BUG: KASAN: slab-out-of-bounds in log_replay+0x654c/0xdb60
  Write of size 8 at addr ffff8880095e1040 by task mount

Two attacker-controlled fields can drive j+i past the allocated
page_lcns[] array:

  1. dp-&gt;lcns_follow (capacity) can be smaller than lrh-&gt;lcns_follow.
  2. lrh-&gt;target_vcn may be smaller than dp-&gt;vcn, making the u64
     subtraction wrap to a huge size_t.

Validate target VCN delta and per-record LCN count against the
DPT entry capacity, bail via the existing out: cleanup label with
-EINVAL.

This mirrors the bounds-check pattern added in commit b2bc7c44ed17
(&quot;fs/ntfs3: Fix slab-out-of-bounds read in DeleteIndexEntryRoot&quot;)
and commit 0ca0485e4b2e (&quot;fs/ntfs3: validate rec-&gt;used in
journal-replay file record check&quot;).(CVE-2026-64432)

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

nvmet-tcp: check INIT_FAILED before nvmet_req_uninit in digest error path

In nvmet_tcp_try_recv_ddgst(), when a data digest mismatch is detected,
nvmet_req_uninit() is called unconditionally. However, if the command
arrived via the nvmet_tcp_handle_req_failure() path, nvmet_req_init()
had returned false and percpu_ref_tryget_live() was never executed. The
unconditional percpu_ref_put() inside nvmet_req_uninit() then causes a
refcount underflow, leading to a WARNING in
percpu_ref_switch_to_atomic_rcu, a use-after-free diagnostic, and
eventually a permanent workqueue deadlock.

Check cmd-&gt;flags &amp; NVMET_TCP_F_INIT_FAILED before calling
nvmet_req_uninit(), matching the existing pattern in
nvmet_tcp_execute_request().(CVE-2026-64534)

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

Bluetooth: eir: Fix stack OOB write when prepending the Flags AD

eir_create_adv_data() builds the advertising data into a fixed-size
buffer (&quot;size&quot;, 31 for the legacy path). It may prepend a 3-byte &quot;Flags&quot;
AD structure (LE_AD_NO_BREDR on an LE-only controller) and then copies
the per-instance data without checking that it still fits:

	memcpy(ptr, adv-&gt;adv_data, adv-&gt;adv_data_len);

tlv_data_max_len() only reserves those 3 bytes when the user-supplied
flags carry a managed-flags bit, so an instance added with flags == 0 is
accepted with adv_data_len up to the full buffer. At advertise time the
flags are still prepended, and the memcpy() writes 3 + adv_data_len
bytes into the size-byte buffer:

  BUG: KASAN: stack-out-of-bounds in eir_create_adv_data (net/bluetooth/eir.c:301)
  Write of size 31 at addr ffff88800a547bdc by task kworker/u9:0/65
  Workqueue: hci0 hci_cmd_sync_work
   __asan_memcpy (mm/kasan/shadow.c:106)
   eir_create_adv_data (net/bluetooth/eir.c:301)
   hci_update_adv_data_sync (net/bluetooth/hci_sync.c:1310)
   hci_schedule_adv_instance_sync (net/bluetooth/hci_sync.c:1817)
   hci_cmd_sync_work (net/bluetooth/hci_sync.c:332)
  This frame has 1 object:
   [32, 64) &apos;cp&apos;

The &quot;Flags&quot; structure is added by the kernel, not requested by
userspace, so only prepend it when it fits together with the instance
advertising data; when there is no room for both, drop the flags rather
than the user-provided data.

Reachable by a local user with CAP_NET_ADMIN owning an LE-only
controller on the legacy advertising path.(CVE-2026-64539)

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

Bluetooth: L2CAP: Fix use-after-free in l2cap_sock_new_connection_cb()

l2cap_sock_new_connection_cb() returned l2cap_pi(sk)-&gt;chan after
release_sock(parent). Once the parent lock is dropped the newly
enqueued child socket sk is reachable via the accept queue, so another
task can accept and free it before the callback dereferences sk,
resulting in a use-after-free.

Rework the -&gt;new_connection() op so the core, rather than the callback,
owns the child channel&apos;s lifetime. The op now receives a pre-allocated
new_chan and returns an errno instead of allocating and returning a
channel. l2cap_new_connection() allocates the child channel and links
it into the conn list via __l2cap_chan_add() before invoking the
callback, so the conn-list reference keeps the channel alive once
release_sock(parent) exposes the socket to other tasks.

Channel configuration that was duplicated in l2cap_sock_init() and the
various new_connection callbacks is consolidated into
l2cap_chan_set_defaults(), which now inherits from the parent channel
when one is supplied.(CVE-2026-64557)</Note>
		<Note Title="Topic" Type="General" Ordinal="4" xml:lang="en">An update for kernel is now available for openEuler-20.03-LTS-SP4/openEuler-22.03-LTS-SP4/openEuler-22.03-LTS-SP3/openEuler-24.03-LTS/openEuler-24.03-LTS-SP2.

openEuler Security has rated this update as having a security impact of critical. A Common Vunlnerability Scoring System(CVSS)base score,which gives a detailed severity rating, is available for each vulnerability from the CVElink(s) in the References section.</Note>
		<Note Title="Severity" Type="General" Ordinal="5" xml:lang="en">Critical</Note>
		<Note Title="Affected Component" Type="General" Ordinal="6" xml:lang="en">kernel</Note>
	</DocumentNotes>
	<DocumentReferences>
		<Reference Type="Self">
			<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
		</Reference>
		<Reference Type="openEuler CVE">
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-31462</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-31576</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-31577</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-31578</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-31716</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-43211</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-52910</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-52989</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-53256</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-53284</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-53369</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-53375</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-53390</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-53399</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-63794</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-63796</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-63807</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-63823</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-63898</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-63940</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64113</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64115</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64178</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64305</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64320</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64322</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64375</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64379</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64380</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64432</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64534</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64539</URL>
			<URL>https://www.openeuler.org/en/security/cve/detail/?cveId=CVE-2026-64557</URL>
		</Reference>
		<Reference Type="Other">
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-31462</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-31576</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-31577</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-31578</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-31716</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-43211</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-52910</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-52989</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-53256</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-53284</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-53369</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-53375</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-53390</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-53399</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-63794</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-63796</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-63807</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-63823</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-63898</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-63940</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64113</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64115</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64178</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64305</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64320</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64322</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64375</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64379</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64380</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64432</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64534</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64539</URL>
			<URL>https://nvd.nist.gov/vuln/detail/CVE-2026-64557</URL>
		</Reference>
	</DocumentReferences>
	<ProductTree xmlns="http://www.icasi.org/CVRF/schema/prod/1.1">
		<Branch Type="Product Name" Name="openEuler">
			<FullProductName ProductID="openEuler-22.03-LTS-SP4" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">openEuler-22.03-LTS-SP4</FullProductName>
		</Branch>
		<Branch Type="Package Arch" Name="x86_64">
			<FullProductName ProductID="bpftool-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">bpftool-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="bpftool-debuginfo-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">bpftool-debuginfo-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="kernel-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="kernel-debuginfo-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-debuginfo-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="kernel-debugsource-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-debugsource-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="kernel-devel-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-devel-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="kernel-headers-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-headers-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="kernel-source-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-source-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="kernel-tools-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-tools-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="kernel-tools-debuginfo-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-tools-debuginfo-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="kernel-tools-devel-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-tools-devel-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="perf-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">perf-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="perf-debuginfo-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">perf-debuginfo-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="python3-perf-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">python3-perf-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
			<FullProductName ProductID="python3-perf-debuginfo-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">python3-perf-debuginfo-5.10.0-328.0.0.229.oe2203sp4.x86_64.rpm</FullProductName>
		</Branch>
		<Branch Type="Package Arch" Name="src">
			<FullProductName ProductID="kernel-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-5.10.0-328.0.0.229.oe2203sp4.src.rpm</FullProductName>
		</Branch>
		<Branch Type="Package Arch" Name="aarch64">
			<FullProductName ProductID="bpftool-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">bpftool-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="bpftool-debuginfo-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">bpftool-debuginfo-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="kernel-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="kernel-debuginfo-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-debuginfo-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="kernel-debugsource-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-debugsource-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="kernel-devel-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-devel-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="kernel-headers-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-headers-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="kernel-source-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-source-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="kernel-tools-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-tools-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="kernel-tools-debuginfo-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-tools-debuginfo-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="kernel-tools-devel-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">kernel-tools-devel-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="perf-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">perf-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="perf-debuginfo-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">perf-debuginfo-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="python3-perf-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">python3-perf-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
			<FullProductName ProductID="python3-perf-debuginfo-5.10.0-328.0.0.229" CPE="cpe:/a:openEuler:openEuler:22.03-LTS-SP4">python3-perf-debuginfo-5.10.0-328.0.0.229.oe2203sp4.aarch64.rpm</FullProductName>
		</Branch>
	</ProductTree>
	<Vulnerability Ordinal="1" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

drm/amdgpu: prevent immediate PASID reuse case

PASID resue could cause interrupt issue when process
immediately runs into hw state left by previous
process exited with the same PASID, it&apos;s possible that
page faults are still pending in the IH ring buffer when
the process exits and frees up its PASID. To prevent the
case, it uses idr cyclic allocator same as kernel pid&apos;s.

(cherry picked from commit 8f1de51f49be692de137c8525106e0fce2d1912d)</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-31462</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>Medium</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>5.5</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:U/C:N/I:N/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="2" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

media: hackrf: fix to not free memory after the device is registered in hackrf_probe()

In hackrf driver, the following race condition occurs:
```
		CPU0						CPU1
hackrf_probe()
  kzalloc(); // alloc hackrf_dev
  ....
  v4l2_device_register();
  ....
						fd = sys_open(&quot;/path/to/dev&quot;); // open hackrf fd
						....
  v4l2_device_unregister();
  ....
  kfree(); // free hackrf_dev
  ....
						sys_ioctl(fd, ...);
						  v4l2_ioctl();
						    video_is_registered() // UAF!!
						....
						sys_close(fd);
						  v4l2_release() // UAF!!
						    hackrf_video_release()
						      kfree(); // DFB!!
```

When a V4L2 or video device is unregistered, the device node is removed so
new open() calls are blocked.

However, file descriptors that are already open-and any in-flight I/O-do
not terminate immediately; they remain valid until the last reference is
dropped and the driver&apos;s release() is invoked.

Therefore, freeing device memory on the error path after hackrf_probe()
has registered dev it will lead to a race to use-after-free vuln, since
those already-open handles haven&apos;t been released yet.

And since release() free memory too, race to use-after-free and
double-free vuln occur.

To prevent this, if device is registered from probe(), it should be
modified to free memory only through release() rather than calling
kfree() directly.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-31576</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.8</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="3" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

nilfs2: fix NULL i_assoc_inode dereference in nilfs_mdt_save_to_shadow_map

The DAT inode&apos;s btree node cache (i_assoc_inode) is initialized lazily
during btree operations. However, nilfs_mdt_save_to_shadow_map()
assumes i_assoc_inode is already initialized when copying dirty pages
to the shadow map during GC.

If NILFS_IOCTL_CLEAN_SEGMENTS is called immediately after mount before
any btree operation has occurred on the DAT inode, i_assoc_inode is
NULL leading to a general protection fault.

Fix this by calling nilfs_attach_btree_node_cache() on the DAT inode
in nilfs_dat_read() at mount time, ensuring i_assoc_inode is always
initialized before any GC operation can use it.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-31577</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>Medium</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>5.5</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:U/C:N/I:N/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="4" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

media: as102: fix to not free memory after the device is registered in as102_usb_probe()

In as102_usb driver, the following race condition occurs:
```
		CPU0						CPU1
as102_usb_probe()
  kzalloc(); // alloc as102_dev_t
  ....
  usb_register_dev();
						fd = sys_open(&quot;/path/to/dev&quot;); // open as102 fd
						....
  usb_deregister_dev();
  ....
  kfree(); // free as102_dev_t
  ....
						sys_close(fd);
						  as102_release() // UAF!!
						    as102_usb_release()
						      kfree(); // DFB!!
```

When a USB character device registered with usb_register_dev() is later
unregistered (via usb_deregister_dev() or disconnect), the device node is
removed so new open() calls fail. However, file descriptors that are
already open do not go away immediately: they remain valid until the last
reference is dropped and the driver&apos;s .release() is invoked.

In as102, as102_usb_probe() calls usb_register_dev() and then, on an
error path, does usb_deregister_dev() and frees as102_dev_t right away.
If userspace raced a successful open() before the deregistration, that
open FD will later hit as102_release() --&gt; as102_usb_release() and access
or free as102_dev_t again, occur a race to use-after-free and
double-free vuln.

The fix is to never kfree(as102_dev_t) directly once usb_register_dev()
has succeeded. After deregistration, defer freeing memory to .release().

In other words, let release() perform the last kfree when the final open
FD is closed.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-31578</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.8</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="5" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

fs/ntfs3: validate rec-&gt;used in journal-replay file record check

check_file_record() validates rec-&gt;total against the record size but
never validates rec-&gt;used.  The do_action() journal-replay handlers read
rec-&gt;used from disk and use it to compute memmove lengths:

  DeleteAttribute:    memmove(attr, ..., used - asize - roff)
  CreateAttribute:    memmove(..., attr, used - roff)
  change_attr_size:   memmove(..., used - PtrOffset(rec, next))

When rec-&gt;used is smaller than the offset of a validated attribute, or
larger than the record size, these subtractions can underflow allowing
us to copy huge amounts of memory in to a 4kb buffer, generally
considered a bad idea overall.

This requires a corrupted filesystem, which isn&apos;t a threat model the
kernel really needs to worry about, but checking for such an obvious
out-of-bounds value is good to keep things robust, especially on journal
replay

Fix this up by bounding rec-&gt;used correctly.

This is much like commit b2bc7c44ed17 (&quot;fs/ntfs3: Fix slab-out-of-bounds
read in DeleteIndexEntryRoot&quot;) which checked different values in this
same switch statement.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-31716</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.8</BaseScore>
				<Vector>AV:L/AC:L/PR:N/UI:R/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="6" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

PCI: Fix pci_slot_trylock() error handling

Commit a4e772898f8b (&quot;PCI: Add missing bridge lock to pci_bus_lock()&quot;)
delegates the bridge device&apos;s pci_dev_trylock() to pci_bus_trylock() in
pci_slot_trylock(), but it forgets to remove the corresponding
pci_dev_unlock() when pci_bus_trylock() fails.

Before a4e772898f8b, the code did:

  if (!pci_dev_trylock(dev)) /* &lt;- lock bridge device */
    goto unlock;
  if (dev-&gt;subordinate) {
    if (!pci_bus_trylock(dev-&gt;subordinate)) {
      pci_dev_unlock(dev);   /* &lt;- unlock bridge device */
      goto unlock;
    }
  }

After a4e772898f8b the bridge-device lock is no longer taken, but the
pci_dev_unlock(dev) on the failure path was left in place, leading to the
bug.

This yields one of two errors:

  1. A warning that the lock is being unlocked when no one holds it.
  2. An incorrect unlock of a lock that belongs to another thread.

Fix it by removing the now-redundant pci_dev_unlock(dev) on the failure
path.

[Same patch later posted by Keith at
https://patch.msgid.link/</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-43211</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.8</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="7" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

bpf: Free reuseport cBPF prog after RCU grace period.

Eulgyu Kim reported the splat below with a repro. [0]

The repro sets up a UDP reuseport group with a cBPF prog and
replaces it with a new one while another thread is sending
a UDP packet to the group.

The reuseport prog is freed by sk_reuseport_prog_free().
bpf_prog_put() is called for &quot;e&quot;BPF prog to destruct through
multiple stages while cBPF prog is freed immediately by
bpf_release_orig_filter() and bpf_prog_free().

If a reuseport prog is detached from the setsockopt() path
(reuseport_attach_prog() or reuseport_detach_prog()),
sk_reuseport_prog_free() is called without waiting for RCU
readers to complete, resulting in various bugs.

Let&apos;s defer freeing the reuseport cBPF prog after one RCU
grace period.

Note &quot;e&quot;BPF prog is safe as is unless the fast path starts
to touch fields destroyed in bpf_prog_put_deferred() and
__bpf_prog_put_noref().

[0]:
BUG: KASAN: vmalloc-out-of-bounds in reuseport_select_sock+0xedc/0x1220 net/core/sock_reuseport.c:596
Read of size 4 at addr ffffc9000051e004 by task slowme/10208
CPU: 6 UID: 1000 PID: 10208 Comm: slowme Not tainted 7.0.0-geb7ac95ff75e #32 PREEMPT(full)
Hardware name: QEMU Ubuntu 24.04 PC v2 (i440FX + PIIX, arch_caps fix, 1996), BIOS 1.16.3-debian-1.16.3-2 04/01/2014
Call Trace:
 &lt;IRQ&gt;
 dump_stack_lvl+0xe8/0x150 lib/dump_stack.c:120
 print_address_description mm/kasan/report.c:378 [inline]
 print_report+0xca/0x240 mm/kasan/report.c:482
 kasan_report+0x118/0x150 mm/kasan/report.c:595
 reuseport_select_sock+0xedc/0x1220 net/core/sock_reuseport.c:596
 udp4_lib_lookup2+0x3bc/0x950 net/ipv4/udp.c:495
 __udp4_lib_lookup+0x768/0xe20 net/ipv4/udp.c:723
 __udp4_lib_lookup_skb+0x297/0x390 net/ipv4/udp.c:752
 __udp4_lib_rcv+0x1312/0x2620 net/ipv4/udp.c:2752
 ip_protocol_deliver_rcu+0x282/0x440 net/ipv4/ip_input.c:207
 ip_local_deliver_finish+0x3bb/0x6f0 net/ipv4/ip_input.c:241
 NF_HOOK+0x30c/0x3a0 include/linux/netfilter.h:318
 NF_HOOK+0x30c/0x3a0 include/linux/netfilter.h:318
 __netif_receive_skb_one_core net/core/dev.c:6181 [inline]
 __netif_receive_skb net/core/dev.c:6294 [inline]
 process_backlog+0xaa4/0x1960 net/core/dev.c:6645
 __napi_poll+0xae/0x340 net/core/dev.c:7709
 napi_poll net/core/dev.c:7772 [inline]
 net_rx_action+0x5d7/0xf50 net/core/dev.c:7929
 handle_softirqs+0x22b/0x870 kernel/softirq.c:622
 do_softirq+0x76/0xd0 kernel/softirq.c:523
 &lt;/IRQ&gt;
 &lt;TASK&gt;
 __local_bh_enable_ip+0xf8/0x130 kernel/softirq.c:450
 local_bh_enable include/linux/bottom_half.h:33 [inline]
 rcu_read_unlock_bh include/linux/rcupdate.h:924 [inline]
 __dev_queue_xmit+0x1dd7/0x3710 net/core/dev.c:4890
 neigh_output include/net/neighbour.h:556 [inline]
 ip_finish_output2+0xca9/0x1070 net/ipv4/ip_output.c:237
 NF_HOOK_COND include/linux/netfilter.h:307 [inline]
 ip_output+0x29f/0x450 net/ipv4/ip_output.c:438
 ip_send_skb+0x45/0xc0 net/ipv4/ip_output.c:1508
 udp_send_skb+0xb04/0x1510 net/ipv4/udp.c:1195
 udp_sendmsg+0x1a71/0x2350 net/ipv4/udp.c:1485
 sock_sendmsg_nosec net/socket.c:727 [inline]
 __sock_sendmsg net/socket.c:742 [inline]
 __sys_sendto+0x554/0x680 net/socket.c:2206
 __do_sys_sendto net/socket.c:2213 [inline]
 __se_sys_sendto net/socket.c:2209 [inline]
 __x64_sys_sendto+0xde/0x100 net/socket.c:2209
 do_syscall_x64 arch/x86/entry/syscall_64.c:63 [inline]
 do_syscall_64+0x160/0xf80 arch/x86/entry/syscall_64.c:94
 entry_SYSCALL_64_after_hwframe+0x77/0x7f
RIP: 0033:0x415a2d
Code: b3 66 2e 0f 1f 84 00 00 00 00 00 66 90 f3 0f 1e fa 48 89 f8 48 89 f7 48 89 d6 48 89 ca 4d 89 c2 4d 89 c8 4c 8b 4c 24 08 0f 05 &lt;48&gt; 3d 01 f0 ff ff 73 01 c3 48 c7 c1 b8 ff ff ff f7 d8 64 89 01 48
RSP: 002b:00007f6bc31e41e8 EFLAGS: 00000212 ORIG_RAX: 000000000000002c
RAX: ffffffffffffffda RBX: 00007f6bc31e4cdc RCX: 0000000000415a2d
RDX: 0000000000000001 RSI: 00007f6bc31e421f RDI: 0000000000000003
RBP: 00007f6bc31e4240 R08: 00007f6bc31e4220 R09: 0000000000000010
R10: 0000000000000000 R11: 
---truncated---</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-52910</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>Medium</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>6.4</BaseScore>
				<Vector>AV:L/AC:H/PR:H/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="8" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

nvmet-tcp: propagate nvmet_tcp_build_pdu_iovec() errors to its callers

Currently, when nvmet_tcp_build_pdu_iovec() detects an out-of-bounds
PDU length or offset, it triggers nvmet_tcp_fatal_error(cmd-&gt;queue)
and returns early. However, because the function returns void, the
callers are entirely unaware that a fatal error has occurred and
that the cmd-&gt;recv_msg.msg_iter was left uninitialized.

Callers such as nvmet_tcp_handle_h2c_data_pdu() proceed to blindly
overwrite the queue state with queue-&gt;rcv_state = NVMET_TCP_RECV_DATA
Consequently, the socket receiving loop may attempt to read incoming
network data into the uninitialized iterator.

Fix this by shifting the error handling responsibility to the callers.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-52989</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.0</BaseScore>
				<Vector>AV:L/AC:H/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="9" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

Bluetooth: RFCOMM: hold listener socket in rfcomm_connect_ind()

rfcomm_get_sock_by_channel() scans rfcomm_sk_list under the list lock,
but returns the selected listener after dropping that lock without
taking a reference. rfcomm_connect_ind() then locks the listener,
queues a child socket on it, and may notify it after unlocking it.

The buggy scenario involves two paths, with each column showing the
order within that path:

rfcomm_connect_ind():            listener close:
  1. Find parent in              1. close() enters
     rfcomm_get_sock_by_channel()   rfcomm_sock_release().
  2. Drop rfcomm_sk_list.lock    2. rfcomm_sock_shutdown()
     without pinning parent.        closes the listener.
  3. Call lock_sock(parent) and  3. rfcomm_sock_kill()
     bt_accept_enqueue(parent,      unlinks and puts parent.
     sk, true).
  4. Read parent flags and may   4. parent can be freed.
     call sk_state_change().

If close wins the race, parent can be freed before
rfcomm_connect_ind() reaches lock_sock(), bt_accept_enqueue(), or the
deferred-setup callback.

Take a reference on the listener before leaving rfcomm_sk_list.lock.
After lock_sock() succeeds, recheck that it is still in BT_LISTEN
before queueing a child, cache the deferred-setup bit while the parent
is locked, and drop the reference after the last parent use.

KASAN reported a slab-use-after-free in lock_sock_nested() from
rfcomm_connect_ind(), with the freeing stack going through
rfcomm_sock_kill() and rfcomm_sock_release().</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-53256</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>8.0</BaseScore>
				<Vector>AV:A/AC:L/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="10" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

btrfs: only release the dirty pages io tree after successful writes

[WARNING]
With extra warning on dirty extent buffers at umount (aka, the next
patch in the series), test case generic/388 can trigger the following
warning about dirty extent buffers at unmount time:

  BTRFS critical (device dm-2 state E): emergency shutdown
  BTRFS error (device dm-2 state E): error while writing out transaction: -30
  BTRFS warning (device dm-2 state E): Skipping commit of aborted transaction.
  BTRFS error (device dm-2 state EA): Transaction 9 aborted (error -30)
  BTRFS: error (device dm-2 state EA) in cleanup_transaction:2068: errno=-30 Readonly filesystem
  BTRFS info (device dm-2 state EA): forced readonly
  BTRFS info (device dm-2 state EA): last unmount of filesystem 4fbf2e15-f941-49a0-bc7c-716315d2777c
  ------------[ cut here ]------------
  WARNING: disk-io.c:3311 at invalidate_and_check_btree_folios+0xfd/0x1ca [btrfs], CPU#8: umount/914368
  CPU: 8 UID: 0 PID: 914368 Comm: umount Tainted: G           OE       7.1.0-rc1-custom+ #372 PREEMPT(full)  2de38db8d1deae71fde295430a0ff3ab98ccf596
  Hardware name: QEMU Standard PC (Q35 + ICH9, 2009), BIOS unknown 02/02/2022
  RIP: 0010:invalidate_and_check_btree_folios+0xfd/0x1ca [btrfs]
  Call Trace:
   &lt;TASK&gt;
   close_ctree+0x52e/0x574 [btrfs d2f0b1cd330d1287e7a9919d112eadfc0e914efd]
   generic_shutdown_super+0x89/0x1a0
   kill_anon_super+0x16/0x40
   btrfs_kill_super+0x16/0x20 [btrfs d2f0b1cd330d1287e7a9919d112eadfc0e914efd]
   deactivate_locked_super+0x2d/0xb0
   cleanup_mnt+0xdc/0x140
   task_work_run+0x5a/0xa0
   exit_to_user_mode_loop+0x123/0x4b0
   do_syscall_64+0x243/0x7c0
   entry_SYSCALL_64_after_hwframe+0x4b/0x53
   &lt;/TASK&gt;
  ---[ end trace 0000000000000000 ]---
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30539776 owner 9 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30621696 owner 257 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30638080 owner 258 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30654464 owner 7 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30703616 owner 2 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30720000 owner 10 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30736384 owner 4 gen 9 refs 2 flags 0x7
  BTRFS warning (device dm-2 state EA): unable to release extent buffer 30752768 owner 11 gen 9 refs 2 flags 0x7

I&apos;m using a stripped down version, which seems to trigger the warning
more reliably:

  _fsstress_pid=&quot;&quot;
  workload()
  {
  	dmesg -C
  	mkfs.btrfs -f -K $dev &gt; /dev/null
  	echo 1 &gt; /sys/kernel/debug/clear_warn_once
  	mount $dev $mnt
  	$fsstress -w -n 1024 -p 4 -d $mnt &amp;
  	_fsstress_pid=$!
  	sleep 0
  	$godown $mnt
  	pkill --echo -PIPE fsstress &gt; /dev/null
  	wait $_fsstress_pid
  	unset _fsstress_pid
  	umount $mnt

  	if dmesg | grep -q &quot;WARNING&quot;; then
  		fail
  	fi
  }

  for (( i = 0; i &lt; $runtime; i++ )); do
  	echo &quot;=== $i/$runtime ===&quot;
  	workload
  done

[CAUSE]
Inside btrfs_write_and_wait_transaction(), we first try to write all
dirty ebs, then wait for them to finish.

After that we call btrfs_extent_io_tree_release() to free all
extent states from dirty_pages io tree.

However if we hit an error from btrfs_write_marked_extent(), then we
still call btrfs_extent_io_tree_release() to clear that dirty_pages io
tree, which may contain dirty records that we haven&apos;t yet submitted.

Furthermore, the later transaction cleanup path will utilize that
dirty_pages io tree to properly cleanup those dirty ebs, but since it&apos;s
already empty, no dirty ebs are properly cleaned up, thus will later
trigger the warnings inside invalidate_btree_folios().
---truncated---</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-53284</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.5</BaseScore>
				<Vector>AV:N/AC:L/PR:N/UI:N/S:U/C:N/I:N/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="11" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

udf: reject descriptors with oversized CRC length

udf_read_tagged() skips CRC verification when descCRCLength +
sizeof(struct tag) exceeds the block size.  A crafted UDF image can
set descCRCLength to an oversized value to bypass CRC validation
entirely; the descriptor is then accepted based solely on the 8-bit
tag checksum, which is trivially recomputable.

Reject such descriptors instead of silently accepting them.  A
legitimate single-block descriptor should never have a CRC length that
exceeds the block.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-53369</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>8.4</BaseScore>
				<Vector>AV:L/AC:L/PR:N/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="12" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

drm/amdgpu/vce: Prevent partial address patches

In the case that only one of lo/hi is valid, the patching could result
in a bad address written to in FW.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-53375</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>8.8</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:C/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="13" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

ksmbd: fix out-of-bounds read in smb_check_perm_dacl()

The permission-check ACE walk in smb_check_perm_dacl() validates the ACE
header size and caps sid.num_subauth at SID_MAX_SUB_AUTHORITIES, but it
never checks that ace-&gt;size is actually large enough to contain
num_subauth sub-authorities before compare_sids() dereferences them.

CIFS_SID_BASE_SIZE covers the SID header up to but excluding the
sub_auth[] array, and offsetof(struct smb_ace, sid) is the ACE header,
so the existing guards only guarantee the 8-byte SID base, i.e. zero
sub-authorities. compare_sids() then reads ace-&gt;sid.sub_auth[i] for
i &lt; min(local_sid-&gt;num_subauth, ace-&gt;sid.num_subauth). The local
comparison SIDs (sid_everyone, sid_unix_NFS_mode, and the id_to_sid()
result) always have at least one sub-authority, and an attacker controls
the ACE revision and authority bytes (which lie within the in-bounds SID
base), so they can match one of those SIDs and force the sub_auth read.

A crafted ACE with size == 16 and num_subauth &gt;= 1 placed at the tail of
the security descriptor therefore causes a heap out-of-bounds read of up
to SID_MAX_SUB_AUTHORITIES * sizeof(__le32) bytes past the pntsd
allocation. The security descriptor is loaded by ksmbd_vfs_get_sd_xattr()
into a buffer sized exactly to the on-disk data (kzalloc(sd_size) in
ndr_decode_v4_ntacl()), so the read lands past the allocation. The
malformed descriptor can be stored verbatim via SMB2_SET_INFO (the DACL
is not normalised before being written to the security.NTACL xattr) and
the read fires on a subsequent SMB2_CREATE access check, making this
reachable by an authenticated client on a share that uses ACL xattrs.

Add the missing num_subauth-versus-ace_size check, mirroring the
identical guards already present in the sibling parsers parse_dacl() and
smb_inherit_dacl().</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-53390</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>8.1</BaseScore>
				<Vector>AV:N/AC:L/PR:L/UI:N/S:U/C:H/I:N/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="14" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

nfsd: release layout stid on setlease failure

nfs4_alloc_stid() publishes the new stid into cl-&gt;cl_stateids via
idr_alloc_cyclic() under cl_lock before returning to
nfsd4_alloc_layout_stateid(). When nfsd4_layout_setlease() then
fails, the error path frees the layout stateid directly with
kmem_cache_free() without ever calling idr_remove(), leaving the
IDR slot pointing at freed slab memory. Any subsequent IDR walker
(states_show, client teardown) dereferences the dangling pointer.

The correct teardown for an IDR-published stid is nfs4_put_stid(),
which removes the IDR slot under cl_lock, dispatches sc_free
(nfsd4_free_layout_stateid) to release ls-&gt;ls_file via
nfsd4_close_layout(), and drops the nfs4_file reference in its
tail.

A second issue blocks that switch: nfsd4_free_layout_stateid()
unconditionally inspects ls-&gt;ls_fence_work via
delayed_work_pending() under ls_lock, but
INIT_DELAYED_WORK(&amp;ls-&gt;ls_fence_work, ...) currently runs only
after the setlease call. On the setlease-failure path the
destructor would touch an uninitialized delayed_work.

    nfsd4_alloc_layout_stateid()
      nfs4_alloc_stid()           /* idr_alloc_cyclic under cl_lock */
      nfsd4_layout_setlease()     /* fails */
        nfs4_put_stid()
          nfsd4_free_layout_stateid()
            delayed_work_pending(&amp;ls-&gt;ls_fence_work)  /* needs INIT */
            nfsd4_close_layout()  /* nfsd_file_put(ls-&gt;ls_file) */
          put_nfs4_file()

Fix by hoisting the ls_fenced / ls_fence_delay / INIT_DELAYED_WORK
initialization above the nfsd4_layout_setlease() call, and replace
the manual nfsd_file_put + put_nfs4_file + kmem_cache_free cleanup
with a single nfs4_put_stid(stp).</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-53399</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>Critical</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>9.8</BaseScore>
				<Vector>AV:N/AC:L/PR:N/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="15" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

KVM: SVM: Fix page overflow in sev_dbg_crypt() for ENCRYPT path

In sev_dbg_crypt(), the per-iteration transfer length is bounded by
the source page offset (PAGE_SIZE - s_off) but not by the destination
page offset (PAGE_SIZE - d_off).  When d_off &gt; s_off, the encrypt
path (__sev_dbg_encrypt_user) performs a read-modify-write using a
single-page intermediate buffer (dst_tpage):

  1. __sev_dbg_decrypt() expands the size to round_up(len + (d_off &amp; 15), 16)
     before issuing the PSP command.  If len + (d_off &amp; 15) &gt; PAGE_SIZE,
     the PSP writes beyond the end of the 4096-byte dst_tpage allocation.

  2. The subsequent memcpy()/copy_from_user() into
     page_address(dst_tpage) + (d_off &amp; 15) of &apos;len&apos; bytes overflows
     by up to 15 bytes under the same condition.

Trigger example: s_off = 0, d_off = 1, debug.len = PAGE_SIZE -
the PSP is instructed to write round_up(4097, 16) = 4112 bytes to
a 4096-byte buffer.

Fix by also bounding len by (PAGE_SIZE - d_off), the same check that
sev_send_update_data() already performs for its single-page guest
region.

 ==================================================================
 BUG: KASAN: slab-use-after-free in sev_dbg_crypt+0x993/0xd10 [kvm_amd]
 Write of size 4095 at addr ff110062293bb009 by task sev_dbg_test/228214

 CPU: 96 UID: 0 PID: 228214 Comm: sev_dbg_test Tainted: G     U  W           7.0.0-smp--5ce9b0c48211-dbg #156 PREEMPTLAZY
 Tainted: [U]=USER, [W]=WARN
 Hardware name: Google Astoria/astoria, BIOS 0.20250817.1-0 08/25/2025
 Call Trace:
  &lt;TASK&gt;
  dump_stack_lvl+0x54/0x70
  print_report+0xbc/0x260
  kasan_report+0xa2/0xd0
  kasan_check_range+0x25f/0x2c0
  __asan_memcpy+0x40/0x70
  sev_dbg_crypt+0x993/0xd10 [kvm_amd]
  sev_mem_enc_ioctl+0x33c/0x450 [kvm_amd]
  kvm_vm_ioctl+0x65d/0x6d0 [kvm]
  __se_sys_ioctl+0xb2/0x100
  do_syscall_64+0xe8/0x870
  entry_SYSCALL_64_after_hwframe+0x4b/0x53
  &lt;/TASK&gt;

 The buggy address belongs to the physical page:
 page: refcount:1 mapcount:0 mapping:0000000000000000 index:0x7fe72b6a0 pfn:0x62293bb
 memcg:ff11000112827d82
 flags: 0x1400000000000000(node=1|zone=1)
 raw: 1400000000000000 0000000000000000 dead000000000122 0000000000000000
 raw: 00000007fe72b6a0 0000000000000000 00000001ffffffff ff11000112827d82
 page dumped because: kasan: bad access detected

 Memory state around the buggy address:
  ff110062293bbf00: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
  ff110062293bbf80: 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00
 &gt;ff110062293bc000: fa fb fb fb fb fb fb fb fc fc fc fc fc fc fc fc
                    ^
  ff110062293bc080: fa fb fb fb fb fb fb fb fc fc fc fc fc fc fc fc
  ff110062293bc100: fa fb fb fb fb fb fb fb fc fc fc fc fc fc fc fc
 ==================================================================
 Disabling lock debugging due to kernel taint

[sean: add sample KASAN splat, Fixes, and stable@]</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-63794</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.8</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="16" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

ocfs2: reject oversized group bitmap descriptors

ocfs2_validate_gd_parent() only bounds bg_bits against the parent
allocator&apos;s chain geometry.  A malicious descriptor can still claim a
bg_size/bg_bits pair that exceeds the bitmap bytes that physically fit in
the group descriptor block, so later bitmap scans and bit updates can run
past bg_bitmap.

Add a physical-cap check based on ocfs2_group_bitmap_size() for the parent
allocator type and reject descriptors whose bg_size or bg_bits exceed that
capacity.  Keep the existing chain geometry check so both the on-disk
bitmap layout and the allocator metadata must agree before the descriptor
is used.

Validation reproduced this kernel report:
KASAN use-after-free in _find_next_bit+0x7f/0xc0
Read of size 8
Call trace:
  dump_stack_lvl+0x66/0xa0 (?:?)
  print_report+0xd0/0x630 (?:?)
  _find_next_bit+0x7f/0xc0 (?:?)
  srso_alias_return_thunk+0x5/0xfbef5 (?:?)
  __virt_addr_valid+0x188/0x2f0 (?:?)
  kasan_report+0xe4/0x120 (?:?)
  ocfs2_find_max_contig_free_bits+0x35/0x70 (fs/ocfs2/suballoc.c:1375)
  ocfs2_block_group_set_bits+0x472/0x4b0 (fs/ocfs2/suballoc.c:1457)
  ocfs2_cluster_group_search+0x16b/0x440 (fs/ocfs2/suballoc.c:86)
  ocfs2_bg_discontig_fix_result+0x1ef/0x230 (fs/ocfs2/suballoc.c:1786)
  ocfs2_search_chain+0x8f8/0x10a0 (fs/ocfs2/suballoc.c:1886)
  get_page_from_freelist+0x70e/0x2370 (?:?)
  lock_release+0xc6/0x290 (?:?)
  do_raw_spin_unlock+0x9a/0x100 (?:?)
  kasan_unpoison+0x27/0x60 (?:?)
  __bfs+0x147/0x240 (?:?)
  get_page_from_freelist+0x83d/0x2370 (?:?)
  ocfs2_claim_suballoc_bits+0x38c/0xe70 (fs/ocfs2/suballoc.c:96)
  sched_domains_numa_masks_clear+0x70/0xd0 (?:?)
  check_irq_usage+0xe8/0xb70 (?:?)
  __ocfs2_claim_clusters+0x18d/0x4c0 (fs/ocfs2/suballoc.c:2497)
  check_path+0x24/0x50 (?:?)
  rcu_is_watching+0x20/0x50 (?:?)
  check_prev_add+0xfd/0xd00 (?:?)
  ocfs2_add_clusters_in_btree+0x17d/0x810 (fs/ocfs2/suballoc.c:?)
  __folio_batch_add_and_move+0x1f5/0x3d0 (?:?)
  ocfs2_add_inode_data+0xd9/0x120 (fs/ocfs2/suballoc.c:?)
  filemap_add_folio+0x105/0x1f0 (?:?)
  ocfs2_write_begin_nolock+0x29f7/0x2f80 (fs/ocfs2/suballoc.c:3043)
  ocfs2_read_inode_block+0xb5/0x110 (fs/ocfs2/suballoc.c:?)
  down_write+0xf5/0x180 (?:?)
  ocfs2_write_begin+0x180/0x240 (fs/ocfs2/suballoc.c:?)
  __mark_inode_dirty+0x758/0x9a0 (?:?)
  inode_to_bdi+0x41/0x90 (?:?)
  balance_dirty_pages_ratelimited_flags+0xf8/0x1d0 (?:?)
  generic_perform_write+0x252/0x440 (?:?)
  mnt_put_write_access_file+0x16/0x70 (?:?)
  file_update_time_flags+0xe4/0x200 (?:?)
  ocfs2_file_write_iter+0x80a/0x1320 (fs/ocfs2/suballoc.c:?)
  lock_acquire+0x184/0x2f0 (?:?)
  ksys_write+0xd2/0x170 (?:?)
  apparmor_file_permission+0xf5/0x310 (?:?)
  read_zero+0x8d/0x140 (?:?)
  lock_is_held_type+0x8f/0x100 (?:?)</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-63796</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>8.8</BaseScore>
				<Vector>AV:N/AC:L/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="17" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

KVM: x86/mmu: Ensure hugepage is in by slot before checking max mapping level

When recovering hugepages in the shadow MMU, verify that the base gfn of
the shadow page is actually contained within the target memslot, *before*
querying the max mapping level given the shadow page&apos;s gfn.  Failure to
pre-check the validity of the gfn can lead to an out-of-bounds access to
the slot&apos;s lpage_info (which typically manifests as a host #PF because the
lpage_info is vmalloc&apos;d) if the guest creates a hugepage mapping (in its
PTEs) that extends &quot;below&quot; the bounds of a memslot.

When faulting in memory for a guest, and the size of the guest mapping is
greater than KVM&apos;s (current) max mapping, then KVM will create a &quot;direct&quot;
shadow page (direct in that there are no gPTEs to shadow, and so the target
gfn is a direct calculation given the base gfn of the shadow page).  The
hugepage recovery flow looks for such direct shadow pages, as forcing 4KiB
mappings when dirty logging generates the guest &gt; host mapping size case.
When the 4KiB restriction is lifted, then KVM can replace the shadow page
with a hugepage.

But if KVM originally used a smaller mapping than the guest because the
range of memory covered by the guest hugepage exceeds the bounds of a
memslot, then KVM will link a direct shadow page with a gfn that is outside
the bounds of the memslot being used to fault in memory.  The rmap entry
added for the leaf mapping is correct and within bounds, but the gfn of the
leaf SPTE&apos;s parent shadow page will be out of bounds.

  BUG: unable to handle page fault for address: ffffc90000806ffc
  #PF: supervisor read access in kernel mode
  #PF: error_code(0x0000) - not-present page
  PGD 100000067 P4D 100000067 PUD 1002a7067 PMD 10612f067 PTE 0
  Oops: Oops: 0000 [#1] SMP
  CPU: 13 UID: 1000 PID: 757 Comm: mmu_stress_test Not tainted 7.1.0-rc1-48ce1e26eace-x86_pir_to_irr_comments-vm #341 PREEMPT
  Hardware name: QEMU Standard PC (Q35 + ICH9, 2009), BIOS 0.0.0 02/06/2015
  RIP: 0010:kvm_mmu_max_mapping_level+0x79/0x2b0 [kvm]
  Call Trace:
   &lt;TASK&gt;
   kvm_mmu_recover_huge_pages+0x21b/0x320 [kvm]
   kvm_set_memslot+0x1ee/0x590 [kvm]
   kvm_set_memory_region.part.0+0x3a1/0x4d0 [kvm]
   kvm_vm_ioctl+0x9bf/0x15d0 [kvm]
   __x64_sys_ioctl+0x8a/0xd0
   do_syscall_64+0xb7/0xbb0
   entry_SYSCALL_64_after_hwframe+0x4b/0x53
  RIP: 0033:0x7f21c0f1a9bf
   &lt;/TASK&gt;

Don&apos;t bother pre-checking the bounds of the potential hugepage, i.e. don&apos;t
check that e.g. sp-&gt;gfn + KVM_PAGES_PER_HPAGE(sp-&gt;role.level + 1) is also
within the memslot, as the checks performed by kvm_mmu_max_mapping_level()
are a superset of the basic bounds checks.  I.e. pre-checking the full
range would be a dubious micro-optimization.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-63807</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.0</BaseScore>
				<Vector>AV:L/AC:H/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="18" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

keys: Pin request_key_auth payload in instantiate paths

A: request_key()       B: KEYCTL_INSTANTIATE_IOV
================       =========================

create auth key
store rka in auth key
wait for helper
                       get auth key
                       load rka from auth key
                       copy user payload
                       sleep on #PF

helper completed
detach and free rka
destroy auth key
                       wake up
                       use rka-&gt;target_key
                       **USE-AFTER-FREE**

Give request_key_auth payloads a refcount.  Take a payload reference while
authkey-&gt;sem stabilizes the payload and revocation state.  Hold that
reference across the instantiate and reject paths.  Drop the auth key
owning reference from revoke and destroy.

[jarkko: Replaced the first two paragraphs of text with an actual
 concurrency scenario.]</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-63823</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.8</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="19" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

USB: serial: mct_u232: fix memory corruption with small endpoint

The driver overrides the maximum transfer size for a specific device
which only accepts 16 byte packets for its 32 byte bulk-out endpoint.

Make sure to never increase the maximum transfer size to prevent slab
corruption should a malicious device report a smaller endpoint max
packet size than expected.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-63898</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.0</BaseScore>
				<Vector>AV:L/AC:H/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="20" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

KVM: SEV: Ignore Port I/O requests of length &apos;0&apos;

Explicitly ignore Port I/O requests of length &apos;0&apos; (or count &apos;0&apos;), so that
setting up the software scratch area (and other code) doesn&apos;t have to
worry about underflowing the length, and to allow for WARNing on trying
to configure the scratch area with len==0.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-63940</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>Critical</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>9.3</BaseScore>
				<Vector>AV:L/AC:L/PR:N/UI:N/S:C/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="21" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

ixgbevf: fix use-after-free in VEPA multicast source pruning

ixgbevf_clean_rx_irq() prunes frames whose source MAC matches the VF&apos;s
own address (VEPA multicast workaround) by freeing the skb and
continuing to the next descriptor:

    dev_kfree_skb_irq(skb);
    continue;

The skb pointer is declared outside the while loop and persists across
iterations.  Because the continue skips the &quot;skb = NULL&quot; reset at the
bottom of the loop, the next iteration enters the &quot;else if (skb)&quot; path
and calls ixgbevf_add_rx_frag() on the freed skb, dereferencing
skb_shinfo(skb)-&gt;nr_frags - a use-after-free in NAPI softirq context.

The sibling driver iavf already handles this correctly by nulling the
pointer before continuing.  Apply the same pattern here.

I do not have ixgbevf hardware; the bug was found by static analysis
(scan_drop_continue_loops.py + semgrep drop_continue_in_loop, multi-tool
corroboration with the highest score in the scan).  The UAF was confirmed
under KASAN by loading a test module that reproduces the exact code
pattern (alloc skb, kfree_skb, then read skb_shinfo(skb)-&gt;nr_frags):

  BUG: KASAN: slab-use-after-free in ixgbevf_uaf_test_init+0x100/0x1000
  Read of size 8 at addr 000000006163ae78 by task insmod/30
  freed 208-byte region [000000006163adc0, 000000006163ae90)

QEMU emulates igb (82576) but not ixgbe (82599), and the igbvf VF
driver does not include the VEPA source pruning path, so a full
end-to-end reproduction with emulated hardware was not possible.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64113</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>Critical</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>9.8</BaseScore>
				<Vector>AV:N/AC:L/PR:N/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="22" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

vsock/vmci: fix UAF when peer resets connection during handshake

vmci_transport_recv_connecting_server() returned err = 0 for a peer
RST in its default switch arm:

	err = pkt-&gt;type == VMCI_TRANSPORT_PACKET_TYPE_RST ? 0 : -EINVAL;

That made vmci_transport_recv_listen() skip vsock_remove_pending(),
leaving the pending socket on the listener&apos;s pending_links with
sk_state = TCP_CLOSE while destroy: still dropped the explicit
reference taken before schedule_delayed_work().

One second later vsock_pending_work() observed is_pending=true and
performed full cleanup: vsock_remove_pending() then the two trailing
sock_put(sk) calls -- the first reached refcount 0 and __sk_freed
the socket, and the second wrote into the freed object:

  BUG: KASAN: slab-use-after-free in refcount_warn_saturate
  Write of size 4 at addr ffff88800b1cac80 by task kworker
  Workqueue: events vsock_pending_work

Treat peer RST like any other unexpected packet type (err = -EINVAL).
All destroy: arms now return err &lt; 0, so vmci_transport_recv_listen()
removes pending from pending_links synchronously and
vsock_pending_work() takes the is_pending=false / !rejected branch,
dropping only its own work reference.  This also closes the
multi-packet race Sashiko reported on v2: pending is removed from
the list before any subsequent packet can find it.

The pre-existing sk_acceptq_removed() gap on the err &lt; 0 path of
vmci_transport_recv_listen() that Sashiko also noted is not
introduced or changed by this patch.

Tested on lts-6.12.79 with KASAN: 52/100 unpatched -&gt; 0/100 patched.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64115</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>8.8</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:C/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="23" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

Bluetooth: bnep: Fix UAF read of dev-&gt;name

bnep_add_connection() needs to keep holding the bnep_session_sem while
reading dev-&gt;name (just like bnep_get_connlist() does); otherwise the
bnep_session() thread can concurrently free the net_device, which can for
example be triggered by a concurrent bnep_del_connection().

(This UAF is fairly uninteresting from a security perspective;
calling bnep_add_connection() requires passing a capable(CAP_NET_ADMIN)
check. It also requires completely tearing down a netdev during a fairly
tight race window.)</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64178</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>8.8</BaseScore>
				<Vector>AV:A/AC:L/PR:N/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="24" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

crypto: qat - protect service table iterations with service_lock

The service_table list is protected by service_lock when entries are
added or removed (in adf_service_add() and adf_service_remove()), but
several functions iterate over the list without holding this lock.

A concurrent adf_service_register() or adf_service_unregister() call
could modify the list during traversal, leading to list corruption or
a use-after-free.

Fix this by holding service_lock across all list_for_each_entry()
iterations of service_table in adf_dev_init(), adf_dev_start(),
adf_dev_stop(), adf_dev_shutdown(), adf_dev_restarting_notify(),
adf_dev_restarted_notify(), and adf_error_notifier().

The lock ordering is safe: callers of the static helpers (adf_dev_up()
and adf_dev_down()) acquire state_lock before service_lock, and no
event_hld callback or service_lock holder ever acquires state_lock in
the reverse order.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64305</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.0</BaseScore>
				<Vector>AV:L/AC:H/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="25" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

nvmet: fix pre-auth out-of-bounds heap read in Discovery Get Log Page

nvmet_execute_disc_get_log_page() validates only the dword alignment
of the host-supplied Log Page Offset (lpo).  The 64-bit offset is then
added to a small kzalloc&apos;d buffer that holds the discovery log page
and the result is passed straight to nvmet_copy_to_sgl(), which
memcpy()s data_len bytes out to the host with no source-side bound
check:

    u64 offset      = nvmet_get_log_page_offset(req-&gt;cmd);  /* 64-bit host */
    size_t data_len = nvmet_get_log_page_len(req-&gt;cmd);     /* 32-bit host */
    ...
    if (offset &amp; 0x3) { ... }                               /* only check */
    ...
    alloc_len = sizeof(*hdr) + entry_size * discovery_log_entries(req);
    buffer = kzalloc(alloc_len, GFP_KERNEL);
    ...
    status = nvmet_copy_to_sgl(req, 0, buffer + offset, data_len);

The Discovery controller is unauthenticated -- nvmet_host_allowed()
returns true unconditionally for the discovery subsystem -- so the call
is reachable pre-authentication by any TCP/RDMA/FC peer that can reach
the nvmet target.  With a discovery log page of ~1 KiB, an attacker
requesting up to 4 KiB starting at offset == alloc_len reads the next
slab page out and gets its content returned over the fabric (an
empirical run on a default nvmet-tcp loopback target leaked 81
canonical kernel pointers in one Get Log Page response).  Pointing the
offset at unmapped kernel memory faults the in-kernel memcpy and
crashes (or panics, on panic_on_oops=1) the target host instead.

The attacker-controlled source-side offset pattern
&quot;nvmet_copy_to_sgl(req, 0, buffer + ATTACKER_OFFSET, ...)&quot; is unique
to nvmet_execute_disc_get_log_page in the entire nvmet codebase: every
other Get Log Page handler in admin-cmd.c either ignores lpo (and
silently starts every response at offset 0) or tracks a local
destination offset with a fixed source pointer.

Validate the host-supplied offset against the log page size, cap the
copy length to what is actually available, and zero-fill any remainder
of the host transfer buffer.  The zero-fill matches the existing
short-response pattern in nvmet_execute_get_log_changed_ns()
(admin-cmd.c) and prevents leaking transport SGL contents when the
host asks for more bytes than the log page contains.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64320</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>Critical</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>9.1</BaseScore>
				<Vector>AV:N/AC:L/PR:N/UI:N/S:U/C:H/I:N/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="26" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

udf: validate sparing table length as an entry count, not a byte count

udf_load_sparable_map() accepts a sparing table when

	sizeof(*st) + le16_to_cpu(st-&gt;reallocationTableLen) &gt; sb-&gt;s_blocksize

is false, i.e. it treats reallocationTableLen as a number of BYTES that
must fit in the block.  But the table is walked as an array of 8-byte
sparingEntry elements:

	for (i = 0; i &lt; le16_to_cpu(st-&gt;reallocationTableLen); i++) {
		struct sparingEntry *entry = &amp;st-&gt;mapEntry[i];
		... entry-&gt;origLocation ...
	}

in udf_get_pblock_spar15() and udf_relocate_blocks().  A
reallocationTableLen of N therefore passes the check whenever
sizeof(*st) + N &lt;= blocksize, yet the consumers index
sizeof(*st) + N * sizeof(struct sparingEntry) bytes -- up to ~8x the
block.  On a crafted UDF image this is an out-of-bounds read in
udf_get_pblock_spar15(); udf_relocate_blocks() additionally feeds the
same length to udf_update_tag(), whose crc_itu_t() reads far past the
block, and its memmove() through st-&gt;mapEntry[] is an out-of-bounds
write.

Validate reallocationTableLen as the entry count it is, with
struct_size().</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64322</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.8</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="27" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

proc: protect ptrace_may_access() with exec_update_lock (FD links)

proc_pid_get_link() and proc_pid_readlink() currently look up the task from
the pid once, then do the ptrace access check on that task, then look up
the task from the pid a second time to do the actual access.
That&apos;s racy in several ways.

To fix it, pass the task to the -&gt;proc_get_link() handler, and instead of
proc_fd_access_allowed(), introduce a new helper call_proc_get_link() that
looks up and locks the task, does the access check, and calls
-&gt;proc_get_link().</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64375</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.8</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="28" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

smb: client: mask server-provided mode to 07777 in modefromsid

When modefromsid is active, parse_dacl() applies the server-provided
sub_auth[2] value from the NFS mode SID to cf_mode without masking to
07777. Apply the correct masking, same as in the read path.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64379</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.1</BaseScore>
				<Vector>AV:N/AC:L/PR:N/UI:R/S:U/C:N/I:L/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="29" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

smb: client: harden POSIX SID length parsing

posix_info_sid_size() reads sid[1] to obtain the subauthority count,
but its existing boundary check still accepts buffers with only one
remaining byte. Require two bytes before reading sid[1] so all client
paths that reuse the helper reject truncated POSIX SIDs safely.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64380</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>8.2</BaseScore>
				<Vector>AV:N/AC:L/PR:N/UI:N/S:U/C:L/I:N/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="30" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

fs/ntfs3: validate Dirty Page Table capacity in log_replay copy_lcns

In the analysis pass of $LogFile journal replay, log_replay() copies
LCNs from each action log record into an existing Dirty Page Table
(DPT) entry without bounding the destination index. A crafted NTFS
image with DPT entry lcns_follow=1 and an action log record with
lcns_follow=2 produces a kernel slab out-of-bounds write at mount
time:

  BUG: KASAN: slab-out-of-bounds in log_replay+0x654c/0xdb60
  Write of size 8 at addr ffff8880095e1040 by task mount

Two attacker-controlled fields can drive j+i past the allocated
page_lcns[] array:

  1. dp-&gt;lcns_follow (capacity) can be smaller than lrh-&gt;lcns_follow.
  2. lrh-&gt;target_vcn may be smaller than dp-&gt;vcn, making the u64
     subtraction wrap to a huge size_t.

Validate target VCN delta and per-record LCN count against the
DPT entry capacity, bail via the existing out: cleanup label with
-EINVAL.

This mirrors the bounds-check pattern added in commit b2bc7c44ed17
(&quot;fs/ntfs3: Fix slab-out-of-bounds read in DeleteIndexEntryRoot&quot;)
and commit 0ca0485e4b2e (&quot;fs/ntfs3: validate rec-&gt;used in
journal-replay file record check&quot;).</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64432</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.8</BaseScore>
				<Vector>AV:L/AC:L/PR:N/UI:R/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="31" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

nvmet-tcp: check INIT_FAILED before nvmet_req_uninit in digest error path

In nvmet_tcp_try_recv_ddgst(), when a data digest mismatch is detected,
nvmet_req_uninit() is called unconditionally. However, if the command
arrived via the nvmet_tcp_handle_req_failure() path, nvmet_req_init()
had returned false and percpu_ref_tryget_live() was never executed. The
unconditional percpu_ref_put() inside nvmet_req_uninit() then causes a
refcount underflow, leading to a WARNING in
percpu_ref_switch_to_atomic_rcu, a use-after-free diagnostic, and
eventually a permanent workqueue deadlock.

Check cmd-&gt;flags &amp; NVMET_TCP_F_INIT_FAILED before calling
nvmet_req_uninit(), matching the existing pattern in
nvmet_tcp_execute_request().</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64534</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>Critical</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>9.8</BaseScore>
				<Vector>AV:N/AC:L/PR:N/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="32" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

Bluetooth: eir: Fix stack OOB write when prepending the Flags AD

eir_create_adv_data() builds the advertising data into a fixed-size
buffer (&quot;size&quot;, 31 for the legacy path). It may prepend a 3-byte &quot;Flags&quot;
AD structure (LE_AD_NO_BREDR on an LE-only controller) and then copies
the per-instance data without checking that it still fits:

	memcpy(ptr, adv-&gt;adv_data, adv-&gt;adv_data_len);

tlv_data_max_len() only reserves those 3 bytes when the user-supplied
flags carry a managed-flags bit, so an instance added with flags == 0 is
accepted with adv_data_len up to the full buffer. At advertise time the
flags are still prepended, and the memcpy() writes 3 + adv_data_len
bytes into the size-byte buffer:

  BUG: KASAN: stack-out-of-bounds in eir_create_adv_data (net/bluetooth/eir.c:301)
  Write of size 31 at addr ffff88800a547bdc by task kworker/u9:0/65
  Workqueue: hci0 hci_cmd_sync_work
   __asan_memcpy (mm/kasan/shadow.c:106)
   eir_create_adv_data (net/bluetooth/eir.c:301)
   hci_update_adv_data_sync (net/bluetooth/hci_sync.c:1310)
   hci_schedule_adv_instance_sync (net/bluetooth/hci_sync.c:1817)
   hci_cmd_sync_work (net/bluetooth/hci_sync.c:332)
  This frame has 1 object:
   [32, 64) &apos;cp&apos;

The &quot;Flags&quot; structure is added by the kernel, not requested by
userspace, so only prepend it when it fits together with the instance
advertising data; when there is no room for both, drop the flags rather
than the user-provided data.

Reachable by a local user with CAP_NET_ADMIN owning an LE-only
controller on the legacy advertising path.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64539</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>7.8</BaseScore>
				<Vector>AV:L/AC:L/PR:L/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
	<Vulnerability Ordinal="33" xmlns="http://www.icasi.org/CVRF/schema/vuln/1.1">
		<Notes>
			<Note Title="Vulnerability Description" Type="General" Ordinal="1" xml:lang="en">In the Linux kernel, the following vulnerability has been resolved:

Bluetooth: L2CAP: Fix use-after-free in l2cap_sock_new_connection_cb()

l2cap_sock_new_connection_cb() returned l2cap_pi(sk)-&gt;chan after
release_sock(parent). Once the parent lock is dropped the newly
enqueued child socket sk is reachable via the accept queue, so another
task can accept and free it before the callback dereferences sk,
resulting in a use-after-free.

Rework the -&gt;new_connection() op so the core, rather than the callback,
owns the child channel&apos;s lifetime. The op now receives a pre-allocated
new_chan and returns an errno instead of allocating and returning a
channel. l2cap_new_connection() allocates the child channel and links
it into the conn list via __l2cap_chan_add() before invoking the
callback, so the conn-list reference keeps the channel alive once
release_sock(parent) exposes the socket to other tasks.

Channel configuration that was duplicated in l2cap_sock_init() and the
various new_connection callbacks is consolidated into
l2cap_chan_set_defaults(), which now inherits from the parent channel
when one is supplied.</Note>
		</Notes>
		<ReleaseDate>2026-08-13</ReleaseDate>
		<CVE>CVE-2026-64557</CVE>
		<ProductStatuses>
			<Status Type="Fixed">
				<ProductID>openEuler-22.03-LTS-SP4</ProductID>
			</Status>
		</ProductStatuses>
		<Threats>
			<Threat Type="Impact">
				<Description>High</Description>
			</Threat>
		</Threats>
		<CVSSScoreSets>
			<ScoreSet>
				<BaseScore>8.8</BaseScore>
				<Vector>AV:A/AC:L/PR:N/UI:N/S:U/C:H/I:H/A:H</Vector>
			</ScoreSet>
		</CVSSScoreSets>
		<Remediations>
			<Remediation Type="Vendor Fix">
				<Description>kernel security update</Description>
				<DATE>2026-08-13</DATE>
				<URL>https://www.openeuler.org/zh/security/security-bulletins/detail/?id=openEuler-SA-2026-3317</URL>
			</Remediation>
		</Remediations>
	</Vulnerability>
</cvrfdoc>