Last updated 25 February 2025
Abnormal termination of an application can a cause a denial of service.
Applications performing certificate name checks (e.g., TLS clients checking server certificates) may attempt to read an invalid memory address when comparing the expected name with an otherName subject alternative name of an X.509 certificate. This may result in an exception that terminates the application program.
Note that basic certificate chain validation (signatures, dates, ...) is not affected, the denial of service can occur only when the application also specifies an expected DNS name, Email address or IP address.
TLS servers rarely solicit client certificates, and even when they do, they generally don't perform a name check against a "reference identifier" (expected identity), but rather extract the presented identity after checking the certificate chain. So TLS servers are generally not affected and the severity of the issue is Moderate.
The FIPS modules in 3.3, 3.2, 3.1 and 3.0 are not affected by this issue. OpenSSL 1.1.1 and 1.0.2 are also not affected by this issue.
OpenSSL 3.3, 3.2, 3.1 and 3.0 are vulnerable to this issue.
OpenSSL 3.3 users should upgrade to OpenSSL 3.3.2
OpenSSL 3.2 users should upgrade to OpenSSL 3.2.3
OpenSSL 3.1 users should upgrade to OpenSSL 3.1.7
OpenSSL 3.0 users should upgrade to OpenSSL 3.0.15
glibc is vulnerable to a denial of service, caused by a memory corruption by the Name Service Cache Daemon's (nscd) netgroup cache when the NSS callback fails to store all strings in the provided buffer. A local attacker could exploit this vulnerability to corrupt memory and cause a denial of service.
glibc is vulnerable to a denial of service, caused by a memory allocation failure when the Name Service Cache Daemon's (nscd) netgroup cache uses the xmalloc or xrealloc functions. A local attacker could exploit this vulnerability to terminate the daemon.
A stack-based buffer overflow in nscd was reported and assigned CVE-2024-33599.
Reference: https://sourceware.org/bugzilla/showbug.cgi?id=31677
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nscd/netgroupcache.c (addinnetgrX):
497 struct indataset 498 { 499 struct datahead head; 500 innetgroupresponseheader resp; 501 } dataset 502 = (struct indataset ) mempoolalloc (db, 503 sizeof (dataset) + req->keylen, 504 1);
mempoolalloc fails and returns NULL.
This is possible if posixfallocate fails and the retry fails.
505 struct indataset datasetmem; 506 bool cacheable = true; 507 if (glibcunlikely (dataset == NULL)) 508 { 509 cacheable = false; 510 dataset = &datasetmem;
This structure has no room for req->keylen material.
511 } 512 513 dataheadinitpos (&dataset->head, sizeof (dataset) + req->keylen, 514 sizeof (innetgroupresponseheader), 515 he == NULL ? 0 : dh->nreloads + 1, result->head.ttl); 516 / Set the notfound status and timeout based on the result from 517 getnetgrent. / 518 dataset->head.notfound = result->head.notfound; 519 dataset->head.timeout = timeout; 520 521 dataset->resp.version = NSCDVERSION; 522 dataset->resp.found = result->resp.found; 523 / Until we find a matching entry the result is 0. / 524 dataset->resp.result = 0; 525 526 char keycopy = memcpy ((char ) (dataset + 1), group, req->keylen);
This copies up to req->keylen material to a structure that has no storage space for it.
This was detected by static code analysis.
It will only happen in the case the database runs out of memory/storage while expanding the netgroup cache.
The group entries overwrite other data on the stack after datasetmem.
The workaround is not to cache the netgroup if this is impacting the use of the application.
libexpat could allow a remote attacker to obtain sensitive information, caused by improper handling of XML external entity (XXE) declarations by the XMLExternalEntityParserCreate function. By using a specially crafted XML content, a remote attacker could exploit this vulnerability to obtain sensitive information, and use this information to launch further attacks against the affected system.
A use-after-free vulnerability in the Linux kernel's netfilter: nftables component can be exploited to achieve local privilege escalation.
The nftverdictinit() function allows positive values as drop error within the hook verdict, and hence the nfhookslow() function can cause a double free vulnerability when NFDROP is issued with a drop error which resembles NFACCEPT.
We recommend upgrading past commit f342de4e2f33e0e39165d8639387aa6c19dff660.
An issue was discovered in drivers/usb/storage/eneub6250.c for the ENE UB6250 reader driver in the Linux kernel before 6.2.5. An object could potentially extend beyond the end of an allocation.
Incorrect cipher key & IV length processing
A flaw in the networking code handling DNS-over-TLS queries may cause named to terminate unexpectedly due to an assertion failure. This happens when internal data structures are incorrectly reused under significant DNS-over-TLS query load. This issue affects BIND 9 versions 9.18.0 through 9.18.18 and 9.18.11-S1 through 9.18.18-S1.
A buffer overflow was discovered in the GNU C Library's dynamic loader ld.so while processing the GLIBCTUNABLES environment variable. This issue could allow a local attacker to use maliciously crafted GLIBCTUNABLES environment variables when launching binaries with SUID permission to execute code with elevated privileges.
A flaw was found in the Linux kernel's ksmbd, a high-performance in-kernel SMB server. The specific flaw exists within the handling of SMB2LOGOFF commands. The issue results from the lack of proper validation of a pointer prior to accessing it. An attacker can leverage this vulnerability to create a denial-of-service condition on the system.
A time-of-check to time-of-use issue exists in iouring subsystem's IORINGOPCLOSE operation in the Linux kernel's versions 5.6 - 5.11 (inclusive), which allows a local user to elevate their privileges to root. Introduced in b5dba59e0cf7e2cc4d3b3b1ac5fe81ddf21959eb, patched in 9eac1904d3364254d622bf2c771c4f85cd435fc2, backported to stable in 788d0824269bef539fe31a785b1517882eafed93.
A named instance configured to run as a DNSSEC-validating recursive resolver with the Aggressive Use of DNSSEC-Validated Cache (RFC 8198) option (synth-from-dnssec) enabled can be remotely terminated using a zone with a malformed NSEC record. This issue affects BIND 9 versions 9.16.8-S1 through 9.16.41-S1 and 9.18.11-S1 through 9.18.15-S1.
If the recursive-clients quota is reached on a BIND 9 resolver configured with both stale-answer-enable yes; and stale-answer-client-timeout 0;, a sequence of serve-stale-related lookups could cause named to loop and terminate unexpectedly due to a stack overflow. This issue affects BIND 9 versions 9.16.33 through 9.16.41, 9.18.7 through 9.18.15, 9.16.33-S1 through 9.16.41-S1, and 9.18.11-S1 through 9.18.15-S1.
Every named instance configured to run as a recursive resolver maintains a cache database holding the responses to the queries it has recently sent to authoritative servers. The size limit for that cache database can be configured using the max-cache-size statement in the configuration file; it defaults to 90% of the total amount of memory available on the host. When the size of the cache reaches 7/8 of the configured limit, a cache-cleaning algorithm starts to remove expired and/or least-recently used RRsets from the cache, to keep memory use below the configured limit. It has been discovered that the effectiveness of the cache-cleaning algorithm used in named can be severely diminished by querying the resolver for specific RRsets in a certain order, effectively allowing the configured max-cache-size limit to be significantly exceeded. This issue affects BIND 9 versions 9.11.0 through 9.16.41, 9.18.0 through 9.18.15, 9.19.0 through 9.19.13, 9.11.3-S1 through 9.16.41-S1, and 9.18.11-S1 through 9.18.15-S1.
An issue was discovered in flsetgeneveopt in net/sched/clsflower.c in the Linux kernel before 6.3.7. It allows an out-of-bounds write in the flower classifier code via TCAFLOWERKEYENCOPTSGENEVE packets. This may result in denial of service or privilege escalation.
A use after free vulnerability was found in preparetorelocate in fs/btrfs/relocation.c in btrfs in the Linux Kernel. This possible flaw can be triggered by calling btrfsioctlbalance() before calling btrfsioctldefrag().
An issue was discovered in the Linux kernel before 6.2. The ntfs3 subsystem does not properly check for correctness during disk reads, leading to an out-of-bounds read in ntfssetea in fs/ntfs3/xattr.c.
A vulnerability was found in openldap that can cause a null pointer dereference in the bermemallocx() function.
Last updated 25 April 2025
The specific flaw exists within the DPT I2O Controller driver. The issue results from the lack of proper locking when performing operations on an object. An attacker can leverage this in conjunction with other vulnerabilities to escalate privileges and execute arbitrary code in the context of the kernel.
A flaw in the Linux Kernel found for the XFS file system. When mounting a user-supplied XFS disk image, the out of bounds memory access can happen. It happens for some corner case when data in Log journal of XFS image different from on-disk buffer that appears to be newer (so this is a dirty log case).
Reference: https://lore.kernel.org/linux-xfs/20230412214034.GL3223426@dread.disaster.area/T/#m1ebbcd1ad061d2d33bef6f0534a2b014744d152d
In the Linux kernel, picknextrtentity() may return a type confused entry, not detected by the BUGON condition, as the confused entry will not be NULL, but listhead.The buggy error condition would lead to a type confused entry with the list head,which would then be used as a type confused schedrtentity,causing memory corruption.
A slab-out-of-bound read problem was found in brcmfgetassocies in drivers/net/wireless/broadcom/brcm80211/brcmfmac/cfg80211.c in the Linux Kernel. This issue could occur when associnfo->reqlen data is bigger than the size of the buffer, defined as WLEXTRABUFMAX, leading to a denial of service.
A double free vulnerability was found in the hciconncleanup function of net/bluetooth/hciconn.c, which may cause DOS or privilege escalation.
Version: Linux kernel 6.2 (this problem also exists in 6.3-rc1)
At the end of the hciconndelsysfs(conn) function in the hciconncleanup function, hcidevput(hdev) will be called. The hcidevput function will eventually call kfree to release the space used by name:
hcidevput putdevice kobjectput krefput kobjectrelease kobjectcleanup kfreeconst kfree
After the hciconndelsysfs function ends, the hcidevput function is called again in the hciconncleanup function, and their parameters hdev are the same, so double free will be caused when the name is released.
In addition, at the end of hciconncleanup, the hciconnput function is called again, which will call the putdevice function to release conn->dev. Obviously conn->dev has been released, so there will also be a double free problem here.
Call Trace from syzbot, https://syzkaller.appspot.com/bug?id=1bb51491ca5df96a5f724899d1dbb87afda61419:
There exists a use-after-free vulnerability in the Linux kernel through iouring and the IORINGOPSPLICE operation. If IORINGOPSPLICE is missing the IOWQWORKFILES flag, which signals that the operation won't use current->nsproxy, so its reference counter is not increased. This assumption is not always true as calling iosplice on specific files will call the getuts function which will use current->nsproxy leading to invalidly decreasing its reference counter later causing the use-after-free vulnerability. We recommend upgrading to version 5.10.160 or above
A flaw was found in the Linux kernel, where unauthorized access to the execution of the setuid file with capabilities was found in the Linux kernel’s OverlayFS subsystem in how a user copies a capable file from a nosuid mount into another mount. This uid mapping bug allows a local user to escalate their privileges on the system.
An issue was discovered in the Linux kernel before 6.0.11. Missing validation of the number of channels in drivers/net/wireless/microchip/wilc1000/cfg80211.c in the WILC1000 wireless driver can trigger a heap-based buffer overflow when copying the list of operating channels from Wi-Fi management frames.
An issue was discovered in the Linux kernel before 6.0.11. Missing validation of IEEE80211P2PATTRCHANNELLIST in drivers/net/wireless/microchip/wilc1000/cfg80211.c in the WILC1000 wireless driver can trigger a heap-based buffer overflow when parsing the operating channel attribute from Wi-Fi management frames.