CVE-2025-38097 (GCVE-0-2025-38097)

Vulnerability from cvelistv5 – Published: 2025-07-03 08:13 – Updated: 2026-08-05 11:59
VLAI
Title
espintcp: remove encap socket caching to avoid reference leak
Summary
In the Linux kernel, the following vulnerability has been resolved: espintcp: remove encap socket caching to avoid reference leak The current scheme for caching the encap socket can lead to reference leaks when we try to delete the netns. The reference chain is: xfrm_state -> enacp_sk -> netns Since the encap socket is a userspace socket, it holds a reference on the netns. If we delete the espintcp state (through flush or individual delete) before removing the netns, the reference on the socket is dropped and the netns is correctly deleted. Otherwise, the netns may not be reachable anymore (if all processes within the ns have terminated), so we cannot delete the xfrm state to drop its reference on the socket. This patch results in a small (~2% in my tests) performance regression. A GC-type mechanism could be added for the socket cache, to clear references if the state hasn't been used "recently", but it's a lot more complex than just not caching the socket.
Assigner
Impacted products
Vendor Product Version
Linux Linux Affected: e27cca96cd68fa2c6814c90f9a1cfd36bb68c593 , < e4cde54b46a87231c77256a633be1bef62687d69 (git)
Affected: e27cca96cd68fa2c6814c90f9a1cfd36bb68c593 , < b58a295d10065960bcb9d60cb8ca6ead9837cd27 (git)
Affected: e27cca96cd68fa2c6814c90f9a1cfd36bb68c593 , < 9cbca30102028f9ad3d2098f935c4368f581fd07 (git)
Affected: e27cca96cd68fa2c6814c90f9a1cfd36bb68c593 , < 74fd327767fb784c5875cf7c4ba1217f26020943 (git)
Affected: e27cca96cd68fa2c6814c90f9a1cfd36bb68c593 , < 028363685bd0b7a19b4a820f82dd905b1dc83999 (git)
Create a notification for this product.
Linux Linux Affected: 5.6
Unaffected: 0 , < 5.6 (semver)
Unaffected: 6.1.141 , ≤ 6.1.* (semver)
Unaffected: 6.6.93 , ≤ 6.6.* (semver)
Unaffected: 6.12.31 , ≤ 6.12.* (semver)
Unaffected: 6.14.9 , ≤ 6.14.* (semver)
Unaffected: 6.15 , ≤ * (original_commit_for_fix)
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Show details on NVD website

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              "value": "AV:L - The entire attack is driven through local syscalls \u2014 `socket()`+`setsockopt(TCP_ULP,\"espintcp\")` to create the encap socket, NETLINK_XFRM to add/flush the SA and policy, and local traffic to trigger `esp_output_tail_tcp()`. No remote peer input is needed to populate or tear down the cached socket reference.\nAC:L - The reference leak itself is fully deterministic \u2014 create the SA, send one packet, let the namespace go away \u2014 with no race or memory-layout dependency, and `CONFIG_INET_ESPINTCP`/`CONFIG_INET6_ESPINTCP` are enabled in mainstream distro kernels. For the dangling-`encap_sk` window the attacker drives both sides (a traffic generator feeding `xfrm_trans_queue_net()` and a concurrent `xfrm state flush` loop) and can retry indefinitely.\nPR:L - Adding the xfrm state requires CAP_NET_ADMIN, but `xfrm_user.c` uses `netlink_net_capable()`, which resolves against `sock_net(skb-\u003esk)-\u003euser_ns`, so an ordinary unprivileged user obtains it with `unshare -Urn`; attaching the espintcp ULP requires no privilege at all. No real root in the init namespace is needed.\nUI:N - The attacker performs every step \u2014 socket setup, SA installation, packet transmission, and namespace teardown \u2014 entirely on their own. No victim action or cooperating process is involved.\nS:U - The leaked netns/socket and the dangling socket dereference are all kernel objects under the same security authority as the attacking context; no VM, IOMMU, or hypervisor boundary is crossed.\nC:H - After `__xfrm_state_delete()` drops the socket reference without RCU synchronization and leaves `x-\u003eencap_sk` non-NULL, the deferred `esp_find_tcp_sk()` reads `sk-\u003esk_state` and then operates on that released socket; because TCP sockets come from a SLAB_TYPESAFE_BY_RCU cache the slot can already hold an attacker-groomed socket, and `espintcp_getctx()` then follows a foreign `icsk_ulp_data`, giving a use-after-free read primitive over attacker-influenced kernel memory.\nI:H - The stale `x-\u003eencap_sk` also lets the slow path match `sk == nsk` and queue a second `sock_put()` through `call_rcu(esp_free_tcp_sk)`, a refcount underflow that frees a socket userspace still references by fd \u2014 a classic UAF write/heap-grooming primitive, and `bh_lock_sock()`/`espintcp_push_skb()` write into the freed object directly.\nA:H - Each leaked SA permanently pins an entire `struct net` (with all per-net subsystem allocations, sysctls, procfs entries and per-cpu data) that can never be reclaimed, and an unprivileged user can repeat this in a loop until kernel memory is exhausted or netns ucount limits break container creation; the dangling-socket dereference additionally oopses the kernel."
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Otherwise, the\\nnetns may not be reachable anymore (if all processes within the ns\\nhave terminated), so we cannot delete the xfrm state to drop its\\nreference on the socket.\\n\\nThis patch results in a small (~2% in my tests) performance\\nregression.\\n\\nA GC-type mechanism could be added for the socket cache, to clear\\nreferences if the state hasn\u0027t been used \\\"recently\\\", but it\u0027s a lot\\nmore complex than just not caching the socket.\"},{\"lang\":\"es\",\"value\":\"En el kernel de Linux, se ha resuelto la siguiente vulnerabilidad: espintcp: eliminar el almacenamiento en cach\u00e9 del socket encap para evitar fugas de referencia El esquema actual para almacenar en cach\u00e9 el socket encap puede provocar fugas de referencia cuando intentamos eliminar los netns. La cadena de referencia es: xfrm_state -\u0026gt; enacp_sk -\u0026gt; netns Dado que el socket encap es un socket de espacio de usuario, contiene una referencia en los netns. Si eliminamos el estado de espintcp (a trav\u00e9s de vaciado o eliminaci\u00f3n individual) antes de eliminar los netns, la referencia en el socket se elimina y los netns se eliminan correctamente. De lo contrario, los netns pueden no ser accesibles m\u00e1s (si todos los procesos dentro de los ns han terminado), por lo que no podemos eliminar el estado xfrm para eliminar su referencia en el socket. Este parche da como resultado una peque\u00f1a regresi\u00f3n del rendimiento (~2% en mis pruebas). Se podr\u00eda agregar un mecanismo de tipo GC para el cach\u00e9 del socket, para borrar referencias si el estado no se ha usado \\\"recientemente\\\", pero es mucho m\u00e1s complejo que simplemente no almacenar en cach\u00e9 el 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List\",\"Third Party Advisory\"]}]}}",
    "redhat_vex": {
      "aggregate_severity": "Low",
      "current_release_date": "2026-07-30T10:11:57+00:00",
      "cve": "CVE-2025-38097",
      "id": "CVE-2025-38097",
      "initial_release_date": "2025-07-03T00:00:00+00:00",
      "product_status:fixed": "612",
      "product_status:known_affected": "70",
      "product_status:known_not_affected": "42",
      "source": "Red Hat CSAF VEX",
      "status": "final",
      "title": "kernel: espintcp: remove encap socket caching to avoid reference leak",
      "url": "https://security.access.redhat.com/data/csaf/v2/vex/2025/cve-2025-38097.json",
      "version": "3"
    }
  }
}



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Forecast uses a logistic model when the trend is rising, or an exponential decay model when the trend is falling. Fitted via linearized least squares.

Sightings

Author Source Type Date Other

Nomenclature

  • Seen: The vulnerability was mentioned, discussed, or observed by the user.
  • Confirmed: The vulnerability has been validated from an analyst's perspective.
  • Published Proof of Concept: A public proof of concept is available for this vulnerability.
  • Exploited: The vulnerability was observed as exploited by the user who reported the sighting.
  • Patched: The vulnerability was observed as successfully patched by the user who reported the sighting.
  • Not exploited: The vulnerability was not observed as exploited by the user who reported the sighting.
  • Not confirmed: The user expressed doubt about the validity of the vulnerability.
  • Not patched: The vulnerability was not observed as successfully patched by the user who reported the sighting.

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Detection rules are retrieved from Rulezet.

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