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Full vulnerability report · 2025
CVE-2025-39901High confidence

i40e: remove read access to debugfs files

Linux · Linux

7.1HighCVSS 3.1
Recommended action
Patch only the product branches with a verified fix

High technical severity; prioritise exposed affected systems while verifying vendor guidance. Verified remediation exists for at least one product or source, but 21 structured product or package states remain unresolved. Apply remediation only to the exact product branch confirmed by its source.

Fix availability varies by product
R
Operational reassessment

Published severity in operational context

Open reassessment dashboard →
Published severityHighOperational priority:Medium, lowered one band.downgradedsince 19 Aug 2026

Evidence used

  • No CISA KEV confirmation is currently recorded.
  • Exploitation requires an existing local or physical foothold with privileges.
  • EPSS is 0.15% for the current model date.

Compensating controls

  • Validate the affected product branch and deploy the verified fixed release.
  • Restrict local access and enforce least privilege on affected hosts.
  • Monitor vendor guidance and exploitation sources for a material change.

Verification

  1. Confirm that the asset runs Linux Linux and falls inside the recorded affected range.
  2. Verify the installed build against the product-specific fixed version after deployment.
  3. Validate exposure, authentication requirements and compensating controls in the actual environment.
  4. Reopen this reassessment when CVSS, KEV, EPSS, exploit evidence or remediation changes.
Mitigation target: As exposure requiresRemediation target: Within 365 days

This automated reassessment organises public evidence. It does not know asset exposure, business impact or control effectiveness and does not replace CVSS or a human risk decision.

Cross-source reconciliation

Remediation availability differs by product scope

Verified remediation exists for at least one product or source, but 21 structured product or package states remain unresolved. Apply remediation only to the exact product branch confirmed by its source.

Distribution package intelligence

Release-specific package status

Debian, ubuntu findings are scoped to the named distribution, release and source package. An absent finding does not mean a package is unaffected.

25 package states
Package result overrides the generic status

BlackTree has verified remediation for at least one product or source, but the relevant distribution still reports no fixed package for 21 affected package states shown here. Treat those rows as affected with no fix until that distribution publishes a fixed version.

Repository candidate not checked

A published vendor fix does not prove that a matching update is enabled and installable on a particular asset. Confirm the local package candidate before scheduling remediation.

Distribution releaseSource packageVendor stateFixed versionEvidence
Debian trixietrixie · sourcelinuxVendor fix publishedDebian records a fixed source-package version for this release.6.12.48-1Debian Security Tracker ↗Source updated 6 Oct 2026
Debian bookwormbookworm · sourcelinuxVendor fix publishedDebian records a fixed source-package version for this release.6.1.187-1Debian Security Tracker ↗Source updated 6 Oct 2026
Debian forkyforky · sourcelinuxVendor fix publishedDebian records a fixed source-package version for this release.6.16.6-1Debian Security Tracker ↗Source updated 6 Oct 2026
Debian sidsid · sourcelinuxVendor fix publishedDebian records a fixed source-package version for this release.6.16.6-1Debian Security Tracker ↗Source updated 6 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinuxAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-awsAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-azureAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-azure-fdeAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-azure-nvidiaAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-gcpAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-gkeAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-gkeopAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-ibmAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-intelAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-lowlatencyAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-nvidiaAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-nvidia-lowlatencyAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-nvidia-tegraAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-oem-6.11Affected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-oracleAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-raspiAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-raspi-realtimeAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-realtimeAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-riscvAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Ubuntu 24.04 LTSnoble · standard archivelinux-xilinxAffected, no fix publishedCanonical OVAL identifies this running kernel flavour as affected and does not publish a fixed package version in this definition.Not published in this feedCanonical Ubuntu Security ↗Source updated 5 Oct 2026
Optional official sources

National CERT insights
?CERT means Computer Emergency Response Team; CSIRT is the closely related term Computer Security Incident Response Team.

Choose official national sources for this report. Each advisory shows its original language. Your selection is remembered on this device and included in shared links.

Official European source

ENISA European Vulnerability Database

Official EUVD identifiers, advisory evidence and known-exploited context. Missing fields are not treated as evidence of low risk.

1 current
ENISA EUVD identifier

EUVD-2025-32889

No EUVD known-exploited evidence

In the Linux kernel, the following vulnerability has been resolved: i40e: remove read access to debugfs files The 'command' and 'netdev_ops' debugfs files are a legacy debugging interface supported by the i40e driver since its early days by commit 02e9c290814c ("i40e: debugfs interface"). Both of these debugfs files provide a read handler which is mostly useless, and which is implemented with questionable logic. They both use a static 256 byte buffer which is initialized to the empty string. In the case of the 'command' file this buffer is literally never used and simply wastes space. In the case of the 'netdev_ops' file, the last command written is saved here. On read, the files contents are presented as the name of the device followed by a colon and then the contents of their respective static buffer. For 'command' this will always be "<device>: ". For 'netdev_ops', this will be "<device>: <last command written>". But note the buffer is shared between all devices operated by this module. At best, it is mostly meaningless information, and at worse it could be accessed simultaneously as there doesn't appear to be any locking mechanism. We have also recently received multiple reports for both read functions about their use of snprintf and potential overflow that could result in reading arbitrary kernel memory. For the 'command' file, this is definitely impossible, since the static buffer is always zero and never written to. For the 'netdev_ops' file, it does appear to be possible, if the user carefully crafts the command input, it will be copied into the buffer, which could be large enough to cause snprintf to truncate, which then causes the copy_to_user to read beyond the length of the buffer allocated by kzalloc. A minimal fix would be to replace snprintf() with scnprintf() which would cap the return to the number of bytes written, preventing an overflow. A more involved fix would be to drop the mostly useless static buffers, saving 512 bytes and modifying the read functions to stop needing those as input. Instead, lets just completely drop the read access to these files. These are debug interfaces exposed as part of debugfs, and I don't believe that dropping read access will break any script, as the provided output is pretty useless. You can find the netdev name through other more standard interfaces, and the 'netdev_ops' interface can easily result in garbage if you issue simultaneous writes to multiple devices at once. In order to properly remove the i40e_dbg_netdev_ops_buf, we need to refactor its write function to avoid using the static buffer. Instead, use the same logic as the i40e_dbg_command_write, with an allocated buffer. Update the code to use this instead of the static buffer, and ensure we free the buffer on exit. This fixes simultaneous writes to 'netdev_ops' on multiple devices, and allows us to remove the now unused static buffer along with removing the read access.

EUVD state
Present in the current official mapping
Known exploitation
Not present in the current ENISA EUVD known-exploited dataset. This is not proof of no exploitation.
ENISA score
7.1 · CVSS 3.1
Advisory evidence
No linked advisory details stored yet
Recommended actionPatch only the product branches with a verified fix

High technical severity; prioritise exposed affected systems while verifying vendor guidance. Verified remediation exists for at least one product or source, but 21 structured product or package states remain unresolved. Apply remediation only to the exact product branch confirmed by its source.

Fix availability varies by product
01

What, why and how

In the Linux kernel, the following vulnerability has been resolved: i40e: remove read access to debugfs files The 'command' and 'netdev_ops' debugfs files are a legacy debugging interface supported by the i40e driver since its early days by commit 02e9c290814c ("i40e: debugfs interface"). Both of these debugfs files provide a read handler which is mostly useless, and which is implemented with questionable logic. They both use a static 256 byte buffer which is initialized to the empty string. In the case of the 'command' file this buffer is literally never used and simply wastes space. In the case of the 'netdev_ops' file, the last command written is saved here. On read, the files contents are presented as the name of the device followed by a colon and then the contents of their respective static buffer. For 'command' this will always be "<device>: ". For 'netdev_ops', this will be "<device>: <last command written>". But note the buffer is shared between all devices operated by this module. At best, it is mostly meaningless information, and at worse it could be accessed simultaneously as there doesn't appear to be any locking mechanism. We have also recently received multiple reports for both read functions about their use of snprintf and potential overflow that could result in reading arbitrary kernel memory. For the 'command' file, this is definitely impossible, since the static buffer is always zero and never written to. For the 'netdev_ops' file, it does appear to be possible, if the user carefully crafts the command input, it will be copied into the buffer, which could be large enough to cause snprintf to truncate, which then causes the copy_to_user to read beyond the length of the buffer allocated by kzalloc. A minimal fix would be to replace snprintf() with scnprintf() which would cap the return to the number of bytes written, preventing an overflow. A more involved fix would be to drop the mostly useless static buffers, saving 512 bytes and modifying the read functions to stop needing those as input. Instead, lets just completely drop the read access to these files. These are debug interfaces exposed as part of debugfs, and I don't believe that dropping read access will break any script, as the provided output is pretty useless. You can find the netdev name through other more standard interfaces, and the 'netdev_ops' interface can easily result in garbage if you issue simultaneous writes to multiple devices at once. In order to properly remove the i40e_dbg_netdev_ops_buf, we need to refactor its write function to avoid using the static buffer. Instead, use the same logic as the i40e_dbg_command_write, with an allocated buffer. Update the code to use this instead of the static buffer, and ensure we free the buffer on exit. This fixes simultaneous writes to 'netdev_ops' on multiple devices, and allows us to remove the now unused static buffer along with removing the read access.

What

In the Linux kernel, the following vulnerability has been resolved: i40e: remove read access to debugfs files The 'command' and 'netdev_ops' debugfs files are a legacy debugging interface supported by the i40e driver since its early days by commit 02e9c290814c ("i40e: debugfs interface"). Both of these debugfs files provide a read handler which is mostly useless, and which is implemented with questionable logic. They both use a static 256 byte buffer which is initialized to the empty string. In the case of the 'command' file this buffer is literally never used and simply wastes space. In the case of the 'netdev_ops' file, the last command written is saved here. On read, the files contents are presented as the name of the device followed by a colon and then the contents of their respective static buffer. For 'command' this will always be "<device>: ". For 'netdev_ops', this will be "<device>: <last command written>". But note the buffer is shared between all devices operated by this module. At best, it is mostly meaningless information, and at worse it could be accessed simultaneously as there doesn't appear to be any locking mechanism. We have also recently received multiple reports for both read functions about their use of snprintf and potential overflow that could result in reading arbitrary kernel memory. For the 'command' file, this is definitely impossible, since the static buffer is always zero and never written to. For the 'netdev_ops' file, it does appear to be possible, if the user carefully crafts the command input, it will be copied into the buffer, which could be large enough to cause snprintf to truncate, which then causes the copy_to_user to read beyond the length of the buffer allocated by kzalloc. A minimal fix would be to replace snprintf() with scnprintf() which would cap the return to the number of bytes written, preventing an overflow. A more involved fix would be to drop the mostly useless static buffers, saving 512 bytes and modifying the read functions to stop needing those as input. Instead, lets just completely drop the read access to these files. These are debug interfaces exposed as part of debugfs, and I don't believe that dropping read access will break any script, as the provided output is pretty useless. You can find the netdev name through other more standard interfaces, and the 'netdev_ops' interface can easily result in garbage if you issue simultaneous writes to multiple devices at once. In order to properly remove the i40e_dbg_netdev_ops_buf, we need to refactor its write function to avoid using the static buffer. Instead, use the same logic as the i40e_dbg_command_write, with an allocated buffer. Update the code to use this instead of the static buffer, and ensure we free the buffer on exit. This fixes simultaneous writes to 'netdev_ops' on multiple devices, and allows us to remove the now unused static buffer along with removing the read access.

Why

The product reads data past the end, or before the beginning, of the intended buffer.

How

An attacker operating through local access may attempt exploitation with low privileges. If successful, the issue may cause the confidentiality, integrity or availability impact described by the vendor.

What

In the Linux kernel, the following vulnerability has been resolved: i40e: remove read access to debugfs files The 'command' and 'netdev_ops' debugfs files are a legacy debugging interface supported by the i40e driver since its early days by commit 02e9c290814c ("i40e: debugfs interface"). Both of these debugfs files provide a read handler which is mostly useless, and which is implemented with questionable logic. They both use a static 256 byte buffer which is initialized to the empty string. In the case of the 'command' file this buffer is literally never used and simply wastes space. In the case of the 'netdev_ops' file, the last command written is saved here. On read, the files contents are presented as the name of the device followed by a colon and then the contents of their respective static buffer. For 'command' this will always be "<device>: ". For 'netdev_ops', this will be "<device>: <last command written>". But note the buffer is shared between all devices operated by this module. At best, it is mostly meaningless information, and at worse it could be accessed simultaneously as there doesn't appear to be any locking mechanism. We have also recently received multiple reports for both read functions about their use of snprintf and potential overflow that could result in reading arbitrary kernel memory. For the 'command' file, this is definitely impossible, since the static buffer is always zero and never written to. For the 'netdev_ops' file, it does appear to be possible, if the user carefully crafts the command input, it will be copied into the buffer, which could be large enough to cause snprintf to truncate, which then causes the copy_to_user to read beyond the length of the buffer allocated by kzalloc. A minimal fix would be to replace snprintf() with scnprintf() which would cap the return to the number of bytes written, preventing an overflow. A more involved fix would be to drop the mostly useless static buffers, saving 512 bytes and modifying the read functions to stop needing those as input. Instead, lets just completely drop the read access to these files. These are debug interfaces exposed as part of debugfs, and I don't believe that dropping read access will break any script, as the provided output is pretty useless. You can find the netdev name through other more standard interfaces, and the 'netdev_ops' interface can easily result in garbage if you issue simultaneous writes to multiple devices at once. In order to properly remove the i40e_dbg_netdev_ops_buf, we need to refactor its write function to avoid using the static buffer. Instead, use the same logic as the i40e_dbg_command_write, with an allocated buffer. Update the code to use this instead of the static buffer, and ensure we free the buffer on exit. This fixes simultaneous writes to 'netdev_ops' on multiple devices, and allows us to remove the now unused static buffer along with removing the read access.

Why

The product reads data past the end, or before the beginning, of the intended buffer.

How

An attacker operating through local access may attempt exploitation with low privileges. If successful, the issue may cause the confidentiality, integrity or availability impact described by the vendor.

02

Exploit reality and attack path

CVSS severity, EPSS forecast probability, public exploit material and CISA-confirmed exploitation are separate signals.

Observed exploitation
?Confirmed exploitation and public exploit material are separate signals. Attacks can occur without public proof-of-concept or exploit code.
No confirmed evidence

No CISA KEV match was present at the last successful refresh. This means no confirmation from that source, not proof of no exploitation.

Public PoC / exploit material
?Confirmed exploitation and public exploit material are separate signals. Attacks can occur without public proof-of-concept or exploit code.
None recorded

No exploit-tagged reference or CISA SSVC proof-of-concept state is currently recorded. Research may still exist outside the structured feeds.

Likely attack path
local access → Out-of-bounds Read → cause the confidentiality, integrity or availability impact described by the vendor
Attack surface
Local
Privileges required
Low: a basic authenticated account is required
User interaction
None
Attack complexity
Low: no specialised conditions are recorded
Security boundary
Unchanged: impact remains within the vulnerable component's security authority
Weakness
?CWE means Common Weakness Enumeration: a standard category for the underlying weakness.
CWE-125 ↗

CWE-125: Out-of-bounds Read. The product reads data past the end, or before the beginning, of the intended buffer.

CVSS vector
?CVSS means Common Vulnerability Scoring System. The vector records the metric values used to calculate technical severity.
CVSS:3.1/AV:L/AC:L/PR:L/UI:N/S:U/C:H/I:N/A:H

Common Vulnerability Scoring System 3.1: the compact vector below is decoded into plain language.

AVLocalAttack vector: The attacker needs local access to the vulnerable system.ACLowAttack complexity: No specialised conditions are required beyond attacker-controlled input.PRLowPrivileges required: The attacker needs basic user-level privileges.UINoneUser interaction: No action by another user is required.SUnchangedScope: The security impact remains within the vulnerable component's authority.CHighConfidentiality impact: A successful attack can cause a major loss.INoneIntegrity impact: No direct loss is represented by this metric.AHighAvailability impact: A successful attack can cause a major loss.
Post-exploitation / living off the land
The issue can support a local privilege or sandbox boundary transition; normal system utilities may then be available in the gained context.
CWE-125
A

Official authority intelligence

Only matched European and national findings are included. Language selectors and unavailable sources are omitted.

ENISA EUVD · EUVD-2025-32889Official EUVD mapping

In the Linux kernel, the following vulnerability has been resolved: i40e: remove read access to debugfs files The 'command' and 'netdev_ops' debugfs files are a legacy debugging interface supported by the i40e driver since its early days by commit 02e9c290814c ("i40e: debugfs interface"). Both of these debugfs files provide a read handler which is mostly useless, and which is implemented with questionable logic. They both use a static 256 byte buffer which is initialized to the empty string. In the case of the 'command' file this buffer is literally never used and simply wastes space. In the case of the 'netdev_ops' file, the last command written is saved here. On read, the files contents are presented as the name of the device followed by a colon and then the contents of their respective static buffer. For 'command' this will always be "<device>: ". For 'netdev_ops', this will be "<device>: <last command written>". But note the buffer is shared between all devices operated by this module. At best, it is mostly meaningless information, and at worse it could be accessed simultaneously as there doesn't appear to be any locking mechanism. We have also recently received multiple reports for both read functions about their use of snprintf and potential overflow that could result in reading arbitrary kernel memory. For the 'command' file, this is definitely impossible, since the static buffer is always zero and never written to. For the 'netdev_ops' file, it does appear to be possible, if the user carefully crafts the command input, it will be copied into the buffer, which could be large enough to cause snprintf to truncate, which then causes the copy_to_user to read beyond the length of the buffer allocated by kzalloc. A minimal fix would be to replace snprintf() with scnprintf() which would cap the return to the number of bytes written, preventing an overflow. A more involved fix would be to drop the mostly useless static buffers, saving 512 bytes and modifying the read functions to stop needing those as input. Instead, lets just completely drop the read access to these files. These are debug interfaces exposed as part of debugfs, and I don't believe that dropping read access will break any script, as the provided output is pretty useless. You can find the netdev name through other more standard interfaces, and the 'netdev_ops' interface can easily result in garbage if you issue simultaneous writes to multiple devices at once. In order to properly remove the i40e_dbg_netdev_ops_buf, we need to refactor its write function to avoid using the static buffer. Instead, use the same logic as the i40e_dbg_command_write, with an allocated buffer. Update the code to use this instead of the static buffer, and ensure we free the buffer on exit. This fixes simultaneous writes to 'netdev_ops' on multiple devices, and allows us to remove the now unused static buffer along with removing the read access.

Official EUVD record ↗
BSI · German · WID-SEC-2025-2170Linux Kernel: Mehrere Schwachstellen

Ein Angreifer kann mehrere Schwachstellen im Linux Kernel ausnutzen, um einen Denial of Service Angriff durchzuführen und andere nicht näher spezifizierte Angriffe durchzuführen, möglicherweise um beliebigen Code auszuführen oder eine Speicherbeschädigung zu verursachen.

Official advisory ↗
Cyber Security Agency of Singapore · English · CSA-SB-20251008Security Bulletin 08 Oct 2025

The Cyber Security Agency of Singapore included this CVE in its official Security Bulletin 08 Oct 2025, published on 8 October 2025. Open the linked bulletin for the product, severity and reference information published in that issue.

Official advisory ↗
CERT-FR · French · CERTFR-2026-AVI-1163Multiples vulnérabilités dans le noyau Linux de Debian LTS

d?id=CVE-2024-58094 Référence CVE CVE-2024-58095 https://www.cve.org/CVERecord?id=CVE-2024-58095 Référence CVE CVE-2025-22104 https://www.cve.org/CVERecord?id=CVE-2025-22104 Référence CVE CVE-2025-38117 https://www.cve.org/CVERecord?id=CVE-2025-38117 Référence CVE CVE-2025-38203 https://www.cve.org/CVERecord?id=CVE-2025-38203 Référence CVE CVE-2025-38206 https://www.cve.org/CVERecord?id=CVE-2025-38206 Référence CVE CVE-2025-38237 https://www.cve.org/CVERecord?id=CVE-2025-38237 Référence CVE CVE-2025-38616 https://www.cve.org/CVERecord?id=CVE-2025-38616 Référence CVE CVE-2025-39833 https://www.cve.org/CVERecord?id=CVE-2025-39833 Référence CVE CVE-2025-39901 https://www.cve.org/CVERecord?id=CVE-2025-39901 Référence CVE CVE-2025-39925 https://www.cve.org/CVERecord?id=CVE-2025-39925 Référence CVE CVE-2025-40054 https://www.cve.org/CVERecord?id=CVE-2025-40054 Référence CVE CVE-2025-40064 https://www.cve.org/CVERecord?id=CVE-2025-40064 Référence CVE CVE-2025-40102 https://www.cve.org/CVERecord?id=CVE-2025-40102 Référence CVE CVE-2025-40139 https://www.cve.org/CVERecord?id=CVE-2025-40139 Référence CVE CVE-2025-40168 https://www.cve.org/CVERecord?id=CVE-2025-40168 Référence CVE CVE-2025-40206 https://www.cve.org/CVERecord?id=CVE-2025-40206 Référence CVE CVE-2025-40307 https://www.cve.org/CVERecord?id=

Official advisory ↗
CERT-FR · French · CERTFR-2026-AVI-0602Multiples vulnérabilités dans le noyau Linux d'Ubuntu

d?id=CVE-2025-39880 Référence CVE CVE-2025-39881 https://www.cve.org/CVERecord?id=CVE-2025-39881 Référence CVE CVE-2025-39883 https://www.cve.org/CVERecord?id=CVE-2025-39883 Référence CVE CVE-2025-39885 https://www.cve.org/CVERecord?id=CVE-2025-39885 Référence CVE CVE-2025-39886 https://www.cve.org/CVERecord?id=CVE-2025-39886 Référence CVE CVE-2025-39891 https://www.cve.org/CVERecord?id=CVE-2025-39891 Référence CVE CVE-2025-39894 https://www.cve.org/CVERecord?id=CVE-2025-39894 Référence CVE CVE-2025-39895 https://www.cve.org/CVERecord?id=CVE-2025-39895 Référence CVE CVE-2025-39899 https://www.cve.org/CVERecord?id=CVE-2025-39899 Référence CVE CVE-2025-39901 https://www.cve.org/CVERecord?id=CVE-2025-39901 Référence CVE CVE-2025-39902 https://www.cve.org/CVERecord?id=CVE-2025-39902 Référence CVE CVE-2025-39907 https://www.cve.org/CVERecord?id=CVE-2025-39907 Référence CVE CVE-2025-39909 https://www.cve.org/CVERecord?id=CVE-2025-39909 Référence CVE CVE-2025-39911 https://www.cve.org/CVERecord?id=CVE-2025-39911 Référence CVE CVE-2025-39913 https://www.cve.org/CVERecord?id=CVE-2025-39913 Référence CVE CVE-2025-39914 https://www.cve.org/CVERecord?id=CVE-2025-39914 Référence CVE CVE-2025-39916 https://www.cve.org/CVERecord?id=CVE-2025-39916 Référence CVE CVE-2025-39920 https://www.cve.org/CVERecord?id=

Official advisory ↗
CERT-FR · French · CERTFR-2026-AVI-0421Multiples vulnérabilités dans le noyau Linux d'Ubuntu

d?id=CVE-2025-39881 Référence CVE CVE-2025-39883 https://www.cve.org/CVERecord?id=CVE-2025-39883 Référence CVE CVE-2025-39885 https://www.cve.org/CVERecord?id=CVE-2025-39885 Référence CVE CVE-2025-39886 https://www.cve.org/CVERecord?id=CVE-2025-39886 Référence CVE CVE-2025-39891 https://www.cve.org/CVERecord?id=CVE-2025-39891 Référence CVE CVE-2025-39894 https://www.cve.org/CVERecord?id=CVE-2025-39894 Référence CVE CVE-2025-39895 https://www.cve.org/CVERecord?id=CVE-2025-39895 Référence CVE CVE-2025-39897 https://www.cve.org/CVERecord?id=CVE-2025-39897 Référence CVE CVE-2025-39899 https://www.cve.org/CVERecord?id=CVE-2025-39899 Référence CVE CVE-2025-39901 https://www.cve.org/CVERecord?id=CVE-2025-39901 Référence CVE CVE-2025-39902 https://www.cve.org/CVERecord?id=CVE-2025-39902 Référence CVE CVE-2025-39907 https://www.cve.org/CVERecord?id=CVE-2025-39907 Référence CVE CVE-2025-39909 https://www.cve.org/CVERecord?id=CVE-2025-39909 Référence CVE CVE-2025-39911 https://www.cve.org/CVERecord?id=CVE-2025-39911 Référence CVE CVE-2025-39913 https://www.cve.org/CVERecord?id=CVE-2025-39913 Référence CVE CVE-2025-39914 https://www.cve.org/CVERecord?id=CVE-2025-39914 Référence CVE CVE-2025-39916 https://www.cve.org/CVERecord?id=CVE-2025-39916 Référence CVE CVE-2025-39920 https://www.cve.org/CVERecord?id=

Official advisory ↗
CERT-FR · French · CERTFR-2026-AVI-0397Multiples vulnérabilités dans le noyau Linux d'Ubuntu

d?id=CVE-2025-39881 Référence CVE CVE-2025-39883 https://www.cve.org/CVERecord?id=CVE-2025-39883 Référence CVE CVE-2025-39885 https://www.cve.org/CVERecord?id=CVE-2025-39885 Référence CVE CVE-2025-39886 https://www.cve.org/CVERecord?id=CVE-2025-39886 Référence CVE CVE-2025-39891 https://www.cve.org/CVERecord?id=CVE-2025-39891 Référence CVE CVE-2025-39894 https://www.cve.org/CVERecord?id=CVE-2025-39894 Référence CVE CVE-2025-39895 https://www.cve.org/CVERecord?id=CVE-2025-39895 Référence CVE CVE-2025-39897 https://www.cve.org/CVERecord?id=CVE-2025-39897 Référence CVE CVE-2025-39899 https://www.cve.org/CVERecord?id=CVE-2025-39899 Référence CVE CVE-2025-39901 https://www.cve.org/CVERecord?id=CVE-2025-39901 Référence CVE CVE-2025-39902 https://www.cve.org/CVERecord?id=CVE-2025-39902 Référence CVE CVE-2025-39907 https://www.cve.org/CVERecord?id=CVE-2025-39907 Référence CVE CVE-2025-39909 https://www.cve.org/CVERecord?id=CVE-2025-39909 Référence CVE CVE-2025-39911 https://www.cve.org/CVERecord?id=CVE-2025-39911 Référence CVE CVE-2025-39913 https://www.cve.org/CVERecord?id=CVE-2025-39913 Référence CVE CVE-2025-39914 https://www.cve.org/CVERecord?id=CVE-2025-39914 Référence CVE CVE-2025-39916 https://www.cve.org/CVERecord?id=CVE-2025-39916 Référence CVE CVE-2025-39920 https://www.cve.org/CVERecord?id=

Official advisory ↗
CERT-FR · French · CERTFR-2026-AVI-0371Multiples vulnérabilités dans le noyau Linux d'Ubuntu

d?id=CVE-2025-39881 Référence CVE CVE-2025-39883 https://www.cve.org/CVERecord?id=CVE-2025-39883 Référence CVE CVE-2025-39885 https://www.cve.org/CVERecord?id=CVE-2025-39885 Référence CVE CVE-2025-39886 https://www.cve.org/CVERecord?id=CVE-2025-39886 Référence CVE CVE-2025-39891 https://www.cve.org/CVERecord?id=CVE-2025-39891 Référence CVE CVE-2025-39894 https://www.cve.org/CVERecord?id=CVE-2025-39894 Référence CVE CVE-2025-39895 https://www.cve.org/CVERecord?id=CVE-2025-39895 Référence CVE CVE-2025-39897 https://www.cve.org/CVERecord?id=CVE-2025-39897 Référence CVE CVE-2025-39899 https://www.cve.org/CVERecord?id=CVE-2025-39899 Référence CVE CVE-2025-39901 https://www.cve.org/CVERecord?id=CVE-2025-39901 Référence CVE CVE-2025-39902 https://www.cve.org/CVERecord?id=CVE-2025-39902 Référence CVE CVE-2025-39907 https://www.cve.org/CVERecord?id=CVE-2025-39907 Référence CVE CVE-2025-39909 https://www.cve.org/CVERecord?id=CVE-2025-39909 Référence CVE CVE-2025-39911 https://www.cve.org/CVERecord?id=CVE-2025-39911 Référence CVE CVE-2025-39913 https://www.cve.org/CVERecord?id=CVE-2025-39913 Référence CVE CVE-2025-39914 https://www.cve.org/CVERecord?id=CVE-2025-39914 Référence CVE CVE-2025-39916 https://www.cve.org/CVERecord?id=CVE-2025-39916 Référence CVE CVE-2025-39920 https://www.cve.org/CVERecord?id=

Official advisory ↗
CERT-FR · French · CERTFR-2026-AVI-0331Multiples vulnérabilités dans le noyau Linux d'Ubuntu

d?id=CVE-2025-39881 Référence CVE CVE-2025-39883 https://www.cve.org/CVERecord?id=CVE-2025-39883 Référence CVE CVE-2025-39885 https://www.cve.org/CVERecord?id=CVE-2025-39885 Référence CVE CVE-2025-39886 https://www.cve.org/CVERecord?id=CVE-2025-39886 Référence CVE CVE-2025-39891 https://www.cve.org/CVERecord?id=CVE-2025-39891 Référence CVE CVE-2025-39894 https://www.cve.org/CVERecord?id=CVE-2025-39894 Référence CVE CVE-2025-39895 https://www.cve.org/CVERecord?id=CVE-2025-39895 Référence CVE CVE-2025-39897 https://www.cve.org/CVERecord?id=CVE-2025-39897 Référence CVE CVE-2025-39899 https://www.cve.org/CVERecord?id=CVE-2025-39899 Référence CVE CVE-2025-39901 https://www.cve.org/CVERecord?id=CVE-2025-39901 Référence CVE CVE-2025-39902 https://www.cve.org/CVERecord?id=CVE-2025-39902 Référence CVE CVE-2025-39907 https://www.cve.org/CVERecord?id=CVE-2025-39907 Référence CVE CVE-2025-39909 https://www.cve.org/CVERecord?id=CVE-2025-39909 Référence CVE CVE-2025-39911 https://www.cve.org/CVERecord?id=CVE-2025-39911 Référence CVE CVE-2025-39913 https://www.cve.org/CVERecord?id=CVE-2025-39913 Référence CVE CVE-2025-39914 https://www.cve.org/CVERecord?id=CVE-2025-39914 Référence CVE CVE-2025-39916 https://www.cve.org/CVERecord?id=CVE-2025-39916 Référence CVE CVE-2025-39920 https://www.cve.org/CVERecord?id=

Official advisory ↗
CERT-FR · French · CERTFR-2026-AVI-0326Multiples vulnérabilités dans les produits VMware

d?id=CVE-2025-39833 Référence CVE CVE-2025-39838 https://www.cve.org/CVERecord?id=CVE-2025-39838 Référence CVE CVE-2025-39850 https://www.cve.org/CVERecord?id=CVE-2025-39850 Référence CVE CVE-2025-39851 https://www.cve.org/CVERecord?id=CVE-2025-39851 Référence CVE CVE-2025-39859 https://www.cve.org/CVERecord?id=CVE-2025-39859 Référence CVE CVE-2025-39863 https://www.cve.org/CVERecord?id=CVE-2025-39863 Référence CVE CVE-2025-39877 https://www.cve.org/CVERecord?id=CVE-2025-39877 Référence CVE CVE-2025-39884 https://www.cve.org/CVERecord?id=CVE-2025-39884 Référence CVE CVE-2025-39886 https://www.cve.org/CVERecord?id=CVE-2025-39886 Référence CVE CVE-2025-39901 https://www.cve.org/CVERecord?id=CVE-2025-39901 Référence CVE CVE-2025-39905 https://www.cve.org/CVERecord?id=CVE-2025-39905 Référence CVE CVE-2025-39908 https://www.cve.org/CVERecord?id=CVE-2025-39908 Référence CVE CVE-2025-39925 https://www.cve.org/CVERecord?id=CVE-2025-39925 Référence CVE CVE-2025-39927 https://www.cve.org/CVERecord?id=CVE-2025-39927 Référence CVE CVE-2025-39929 https://www.cve.org/CVERecord?id=CVE-2025-39929 Référence CVE CVE-2025-39931 https://www.cve.org/CVERecord?id=CVE-2025-39931 Référence CVE CVE-2025-39932 https://www.cve.org/CVERecord?id=CVE-2025-39932 Référence CVE CVE-2025-39933 https://www.cve.org/CVERecord?id=

Official advisory ↗
CERT-FR · French · CERTFR-2026-AVI-0316Multiples vulnérabilités dans les produits VMware

d?id=CVE-2025-39833 Référence CVE CVE-2025-39838 https://www.cve.org/CVERecord?id=CVE-2025-39838 Référence CVE CVE-2025-39850 https://www.cve.org/CVERecord?id=CVE-2025-39850 Référence CVE CVE-2025-39851 https://www.cve.org/CVERecord?id=CVE-2025-39851 Référence CVE CVE-2025-39859 https://www.cve.org/CVERecord?id=CVE-2025-39859 Référence CVE CVE-2025-39863 https://www.cve.org/CVERecord?id=CVE-2025-39863 Référence CVE CVE-2025-39877 https://www.cve.org/CVERecord?id=CVE-2025-39877 Référence CVE CVE-2025-39884 https://www.cve.org/CVERecord?id=CVE-2025-39884 Référence CVE CVE-2025-39886 https://www.cve.org/CVERecord?id=CVE-2025-39886 Référence CVE CVE-2025-39901 https://www.cve.org/CVERecord?id=CVE-2025-39901 Référence CVE CVE-2025-39905 https://www.cve.org/CVERecord?id=CVE-2025-39905 Référence CVE CVE-2025-39908 https://www.cve.org/CVERecord?id=CVE-2025-39908 Référence CVE CVE-2025-39925 https://www.cve.org/CVERecord?id=CVE-2025-39925 Référence CVE CVE-2025-39927 https://www.cve.org/CVERecord?id=CVE-2025-39927 Référence CVE CVE-2025-39929 https://www.cve.org/CVERecord?id=CVE-2025-39929 Référence CVE CVE-2025-39931 https://www.cve.org/CVERecord?id=CVE-2025-39931 Référence CVE CVE-2025-39932 https://www.cve.org/CVERecord?id=CVE-2025-39932 Référence CVE CVE-2025-39933 https://www.cve.org/CVERecord?id=

Official advisory ↗
JVN iPedia · Japanese · JVNDB-2025-022332Linux の Linux Kernel における境界外読み取りに関する脆弱性

Linux の Linux Kernel には、境界外読み取りに関する脆弱性が存在します。

Official advisory ↗
03

Patch and workaround

Operational remediation based on structured source evidence.

Status
?Patch availability is based on structured fixed-version fields and authoritative update references. If no fix is verified, check the vendor advisory before making a change.
Fix availability varies by product
Affected
Linux: 02e9c290814cc143ceccecb14eac3e7a05da745e < 6fd8b30a5cb84d74015bc651799d1ab1e047946c, 02e9c290814cc143ceccecb14eac3e7a05da745e < ef40d9411469306e524e7887c51b709377e6ef65, 02e9c290814cc143ceccecb14eac3e7a05da745e < 70d3dad7d5ad077965d7a63eed1942b7ba49bfb4, 02e9c290814cc143ceccecb14eac3e7a05da745e < 7d190963b80f4cd99d7008615600aa7cc993c6ba, 02e9c290814cc143ceccecb14eac3e7a05da745e < 9fcdb1c3c4ba134434694c001dbff343f1ffa319, 3.12
Fixed
Linux: < 3.12, 6.1.183 ≤ 6.1.*, 6.6.148 ≤ 6.6.*, 6.12.46 ≤ 6.12.*, 6.16.6 ≤ 6.16.*, 6.17 ≤ *
Action
Use the product-specific evidence above. Patch only products with a verified fixed release, and keep every affected or under-investigation state without a matching fix in the remediation queue.
Workaround
No verified workaround is recorded. Limit untrusted access and use least privilege until authoritative guidance is available.
04

Evidence and provenance

Published 1 Oct 2025 · Last source change 19 Aug 2026, 16:27 UTC · CWE-125 · Out-of-bounds Read

CVE recordCVE.org · 5.2
CVSS sourceNIST NVD
EPSS source
?The date BlackTree first stored a score for this CVE from the daily FIRST EPSS feed.
FIRST · tracked since 2026-08-14
European sourceENISA EUVD · EUVD-2025-32889
Product sourceCNA
Remediation sourceCVE/CNA references
CWE sourceCISA ADP
NVD statusNVD modified after enrichment

Core structured fields are present and their contributing authorities are shown above.

Material change intelligence

What changed after publication

View recent updates ↗
  1. Affected versionsThe structured affected or fixed version information changed.
    Before
    02e9c290814cc143ceccecb14eac3e7a05da745e < ef40d9411469306e524e7887c51b709377e6ef65; 02e9c290814cc143ceccecb14eac3e7a05da745e < 70d3dad7d5ad077965d7a63eed1942b7ba49bfb4; 02e9c290814cc143ceccecb14eac3e7a05da745e < 7d190963b80f4cd99d7008615600aa7cc993c6ba; 02e9c290814cc143ceccecb14eac3e7a05da745e < 9fcdb1c3c4ba134434694c001dbff343f1ffa319; 3.12 · Fixed: < 3.12; 6.6.148 ≤ 6.6.*; 6.12.46 ≤ 6.12.*; 6.16.6 ≤ 6.16.*; 6.17 ≤ *
    After
    02e9c290814cc143ceccecb14eac3e7a05da745e < 6fd8b30a5cb84d74015bc651799d1ab1e047946c; 02e9c290814cc143ceccecb14eac3e7a05da745e < ef40d9411469306e524e7887c51b709377e6ef65; 02e9c290814cc143ceccecb14eac3e7a05da745e < 70d3dad7d5ad077965d7a63eed1942b7ba49bfb4; 02e9c290814cc143ceccecb14eac3e7a05da745e < 7d190963b80f4cd99d7008615600aa7cc993c6ba; 02e9c290814cc143ceccecb14eac3e7a05da745e < 9fcdb1c3c4ba134434694c001dbff343f1ffa319; 3.12 · Fixed: < 3.12; 6.1.183 ≤ 6.1.*; 6.6.148 ≤ 6.6.*; 6.12.46 ≤ 6.12.*; 6.16.6 ≤ 6.16.*; 6.17 ≤ *
    CNA ↗
Material fields only · duplicate refreshes suppressed · history retained for the configured operational retention period
Technical terms and abbreviations used in this report
CVE
Common Vulnerabilities and Exposures: the public identifier for one disclosed vulnerability.
CVSS
Common Vulnerability Scoring System: a technical severity framework; it is not patching priority by itself.
EPSS
Exploit Prediction Scoring System: FIRST's estimate of the probability that exploitation activity will be observed in the next 30 days; it is a forecast, not confirmation.
CWE
Common Weakness Enumeration: the standard category describing the underlying software or hardware weakness.
CNA
CVE Numbering Authority: an organisation authorised to assign and publish CVE records.
CISA ADP
Cybersecurity and Infrastructure Security Agency Authorized Data Publisher: structured enrichment added to a CVE record.
NVD
National Vulnerability Database: NIST's enrichment service for CVE records.
CERT / CSIRT
A computer security incident response team that publishes warnings or coordinates incident response.
PoC
Proof of concept: public material that demonstrates or helps reproduce exploitation.
CSAF
Common Security Advisory Framework: a machine-readable format for security advisories.
LoTL
Living off the land: abuse of legitimate tools or system functions during an attack.
Free version - for non-commercial use only.CVE-2025-39901 · cve.blacktree.nl