high CVSS 7

CVE-2024-50066·Kernel vulnerability

In the Linux kernel, the following vulnerability has been resolved: mm/mremap: fix move_normal_pmd/retract_page_tables race In mremap(), move_page_tables() looks at the type of the PMD entry and the specified address range to figure out by which method the next chunk of page table entries should be moved. At that point, the mmap_lock is held in write mode, but no rmap locks are held yet. For PMD entries that point to page tables and are fully covered by the source address range, move_pgt_entry(NORMAL_PMD, ...) is called, which first takes rmap locks, then does move_normal_pmd(). move_normal_pmd() takes the necessary page table locks at source and destination, then moves an entire page table from the source to the destination. The problem is: The rmap locks, which protect against concurrent page table removal by retract_page_tables() in the THP code, are only taken after the PMD entry has been read and it has been decided how to move it. So we can race as follows (with two processes that have mappings of the same tmpfs file that is stored on a tmpfs mount with huge=advise); note that process A accesses page tables through the MM while process B does it through the file rmap: process A process B ========= ========= mremap mremap_to move_vma move_page_tables get_old_pmd alloc_new_pmd *** PREEMPT *** madvise(MADV_COLLAPSE) do_madvise madvise_walk_vmas madvise_vma_behavior madvise_collapse hpage_collapse_scan_file collapse_file retract_page_tables i_mmap_lock_read(mapping) pmdp_collapse_flush i_mmap_unlock_read(mapping) move_pgt_entry(NORMAL_PMD, ...) take_rmap_locks move_normal_pmd drop_rmap_locks When this happens, move_normal_pmd() can end up creating bogus PMD entries in the line `pmd_populate(mm, new_pmd, pmd_pgtable(pmd))`. The effect depends on arch-specific and machine-specific details; on x86, you can end up with physical page 0 mapped as a page table, which is likely exploitable for user->kernel privilege escalation. Fix the race by letting process B recheck that the PMD still points to a page table after the rmap locks have been taken. Otherwise, we bail and let the caller fall back to the PTE-level copying path, which will then bail immediately at the pmd_none() check. Bug reachability: Reaching this bug requires that you can create shmem/file THP mappings - anonymous THP uses different code that doesn't zap stuff under rmap locks. File THP is gated on an experimental config flag (CONFIG_READ_ONLY_THP_FOR_FS), so on normal distro kernels you need shmem THP to hit this bug. As far as I know, getting shmem THP normally requires that you can mount your own tmpfs with the right mount flags, which would require creating your own user+mount namespace; though I don't know if some distros maybe enable shmem THP by default or something like that. Bug impact: This issue can likely be used for user->kernel privilege escalation when it is reachable.

Severity
high
Software
Kernel
Fixed in
6.11.5
Published
2024-10-23

Affected versions

From: 6.7

Until: 6.11.5

Fixed in: 6.11.5

How to fix this CVE

Update your Linux kernel to version 6.11.5 or later to resolve a critical race condition in the mremap() function that could allow local privilege escalation. This vulnerability exists in kernels 6.7 through 6.11.4 and requires immediate patching, particularly on systems with shmem/tmpfs Transparent Huge Pages (THP) enabled. Reboot the system after applying the kernel update to ensure the fix is active.

sudo dnf update kernel && sudo reboot

Defensia detects this vulnerability

How to check if you are affected

  1. Step 1: Check your current kernel version by running: uname -r. The output will show if you are running a version between 6.7 and 6.11.4 (vulnerable range).
  2. Step 2: Verify if shmem THP is enabled: cat /sys/kernel/mm/transparent_hugepage/shmem_enabled. If the output includes 'advise' or 'always', the vulnerable code path is accessible.
  3. Step 3: Check system logs for mremap-related crashes or privilege escalation attempts: sudo journalctl -xe | grep -i 'mremap\|page.*table\|pmd'.
  4. Step 4: After applying the kernel update, confirm the new version with: uname -r and verify it is 6.11.5 or later. Then reboot and verify again to ensure the fix is loaded.

FAQ

What is CVE-2024-50066?

CVE-2024-50066 is a race condition in Linux kernel's mremap() function where concurrent page table operations can create invalid memory mappings, potentially allowing a local attacker to escalate privileges from user to kernel level. The vulnerability occurs when the mremap operation races with Transparent Huge Pages (THP) collapse operations on shared memory or file-backed mappings.

Is CVE-2024-50066 being actively exploited?

As of the latest available information, CVE-2024-50066 is not listed as actively exploited in the CISA Known Exploited Vulnerabilities catalog, and no public exploits have been released. However, the vulnerability's potential for kernel privilege escalation makes it a high priority for patching regardless of exploitation status.

What versions of Kernel are affected by CVE-2024-50066?

Linux kernel versions 6.7 through 6.11.4 are affected by this vulnerability. The fix was implemented in kernel version 6.11.5 and later stable releases.

How do I check if my server is vulnerable to CVE-2024-50066?

Run `uname -r` to check your kernel version; if it reports 6.7 through 6.11.4, you are vulnerable. Additionally, verify shmem THP is enabled with `cat /sys/kernel/mm/transparent_hugepage/shmem_enabled` - if it contains 'advise' or 'always', the attack surface is present.

Does Defensia detect CVE-2024-50066?

Yes — Defensia's CVE advisory scanner compares installed kernel package versions against the NVD database. If the Linux kernel is installed on a monitored server and is within the vulnerable range (6.7-6.11.4), CVE-2024-50066 will appear in your dashboard with immediate remediation guidance and patch availability for your specific distribution.

Related Kernel CVEs

CVE-2024-42256CVSS 9.8In the Linux kernel, the following vulnerability has been resolved: cifs: Fix server re-repick on subrequest retry When a subrequest is marked for needing retry, netfs will call cifs_prepare_write() which will make cifs repick the server for the op before renegotiating credits; it then calls cifs_issue_write() which invokes smb2_async_writev() - which re-repicks the server. If a different server is then selected, this causes the increment of server->in_flight to happen against one record and the decrement to happen against another, leading to misaccounting. Fix this by just removing the repick code in smb2_async_writev(). As this is only called from netfslib-driven code, cifs_prepare_write() should always have been called first, and so server should never be NULL and the preparatory step is repeated in the event that we do a retry. The problem manifests as a warning looking something like: WARNING: CPU: 4 PID: 72896 at fs/smb/client/smb2ops.c:97 smb2_add_credits+0x3f0/0x9e0 [cifs] ... RIP: 0010:smb2_add_credits+0x3f0/0x9e0 [cifs] ... smb2_writev_callback+0x334/0x560 [cifs] cifs_demultiplex_thread+0x77a/0x11b0 [cifs] kthread+0x187/0x1d0 ret_from_fork+0x34/0x60 ret_from_fork_asm+0x1a/0x30 Which may be triggered by a number of different xfstests running against an Azure server in multichannel mode. generic/249 seems the most repeatable, but generic/215, generic/249 and generic/308 may also show it.
CVE-2024-36031CVSS 9.8In the Linux kernel, the following vulnerability has been resolved: keys: Fix overwrite of key expiration on instantiation The expiry time of a key is unconditionally overwritten during instantiation, defaulting to turn it permanent. This causes a problem for DNS resolution as the expiration set by user-space is overwritten to TIME64_MAX, disabling further DNS updates. Fix this by restoring the condition that key_set_expiry is only called when the pre-parser sets a specific expiry.
CVE-2024-38612CVSS 9.8In the Linux kernel, the following vulnerability has been resolved: ipv6: sr: fix invalid unregister error path The error path of seg6_init() is wrong in case CONFIG_IPV6_SEG6_LWTUNNEL is not defined. In that case if seg6_hmac_init() fails, the genl_unregister_family() isn't called. This issue exist since commit 46738b1317e1 ("ipv6: sr: add option to control lwtunnel support"), and commit 5559cea2d5aa ("ipv6: sr: fix possible use-after-free and null-ptr-deref") replaced unregister_pernet_subsys() with genl_unregister_family() in this error path.
CVE-2024-38623CVSS 9.8In the Linux kernel, the following vulnerability has been resolved: fs/ntfs3: Use variable length array instead of fixed size Should fix smatch warning: ntfs_set_label() error: __builtin_memcpy() 'uni->name' too small (20 vs 256)
CVE-2021-47548CVSS 9.8In the Linux kernel, the following vulnerability has been resolved: ethernet: hisilicon: hns: hns_dsaf_misc: fix a possible array overflow in hns_dsaf_ge_srst_by_port() The if statement: if (port >= DSAF_GE_NUM) return; limits the value of port less than DSAF_GE_NUM (i.e., 8). However, if the value of port is 6 or 7, an array overflow could occur: port_rst_off = dsaf_dev->mac_cb[port]->port_rst_off; because the length of dsaf_dev->mac_cb is DSAF_MAX_PORT_NUM (i.e., 6). To fix this possible array overflow, we first check port and if it is greater than or equal to DSAF_MAX_PORT_NUM, the function returns.

References

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