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  4. CVE 2026 19735 predictable tcp initial sequence numbers when the
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Back to active CVEs
Medium · CVSS 4.8CVE-2026-19735

Predictable TCP initial sequence numbers when the RFC 6528 secret key generation fails silently in the Zephyr TCP stackCVE-2026-19735

Answer in brief

CVE-2026-19735 records a Medium severity (CVSS 4.8) vulnerability in Predictable TCP initial sequence numbers when the RFC 6528 secret key generation fails silently in the Zephyr TCP stack. The current sources do not mark it as known exploited. The current feed maps zephyrproject/zephyr (generic). Check affected ranges and fixed versions before updating.

Analysis pending evidence review

HOL Guard separates source facts from reviewed analysis. See the methodology.

Published Oct 11, 2026Updated Oct 11, 2026Source checked Oct 11, 2026First seen by HOL Oct 11, 2026Material review Oct 11, 2026
Upstream Advisory

Key facts

Risk
Medium · CVSS 4.8
Exploitation
Not marked as known exploited
Affected software
1 mapped package or product
Fix availability
Not reported

Why this deserves its current priority

CVSS is 4.8. The current sources do not mark it as known exploited. Treat this as a source-backed prioritization signal, not a statement about your environment.

Analysis status

Analysis pending evidence review

Factual feed record only; HOL analysis is not approved for indexing. Read the methodology.

Affected scope and exposure questions

The current feed maps zephyrproject/zephyr (generic). Check affected ranges and fixed versions before updating.

Mapped affected packages and fixed versions
PackageAffected rangeFixed version
zephyrproject/zephyrgeneric>=3.7.0 <=4.4.2Not reported

Recommended response

  1. 1Check inventory. Check lockfiles and deployed manifests for zephyrproject/zephyr.
  2. 2Review the reported fix. Monitor this advisory for an available fix and review any installs of the affected package.

Evidence timeline and material changes

  1. Published upstream

    Oct 11, 2026

    Evidence: source:cvelist:source_dates:source-dates:record
  2. Source modified

    Oct 11, 2026

    Evidence: source:cvelist:source_dates:source-dates:record
  3. First seen by HOL

    Oct 11, 2026

Sources and claim methodology

  • GitHub security advisorygithub.com
  • GitHub security advisorygithub.com
Upstream source description

The RFC 6528 initial-sequence-number implementation in subsys/net/ip/tcp.c derived every TCP ISN from SHA-256(unique_key || four-tuple) plus a uptime-derived offset, where unique_key is a 128-bit secret filled once by sys_csrand_get(). The return value of that call was discarded and the once guard was latched to true even when the call failed. Because sys_csrand_get() leaves the destination buffer untouched on failure (it deliberately propagates the entropy-driver error rather than filling the buffer), a single failed call left unique_key as its all-zero BSS content for the remainder of the boot, with no retry, no log message and no fallback. A failure of the cryptographic random source is required to reach the weak state — for example -ENODEV/-EIO from the entropy driver in subsys/random/random_entropy_device.c (the in-tree comment notes that the hardware RNG "might still be gathering entropy during early boot situations"), or psa_generate_random() failing in subsys/random/random_psa.c when PSA crypto is not initialised or is backed by a Bluetooth-HCI entropy device that is not yet up. The first TCP connection is what triggers key generation, so a remote peer that reaches a listening port immediately after boot, or that can provoke a reboot, has indirect influence over whether generation coincides with that window. tcp_init_isn() is called for every passive open in tcp_conn_new() and every active open in net_tcp_connect(), so the poisoned key governs all TCP connections for that boot. With an all-zero key the ISN becomes a public function of the connection four-tuple plus a device-wide time offset. An off-path attacker can compute the hash term offline for any four-tuple and recover the shared time offset from a single observed ISN, after which the ISN the device will pick for other four-tuples is predictable. That defeats exactly the protection RFC 6528 provides: blind TCP connection spoofing against peers that trust the source address, and blind data injection into or reset of connections whose four-tuple can be guessed. Devices whose entropy source never errors were never in the weak state. The fix moves key generation into a single guarded helper that latches only on success, logs the error otherwise, and makes tcp_init_isn() fall back to sys_rand32_get() — the behaviour already used when CONFIG_NET_TCP_ISN_RFC6528 is disabled — instead of hashing with a known-constant key.

Quoted source text, attributed separately from HOL analysis.

Related CVEs

  • Out-of-bounds read when the zbus proxy agent IPC backend logs a rejected peer frame's channel nameSame zephyrproject/zephyr package
  • Stack out-of-bounds write in the Goodix GT911 touch controller driver from an unvalidated device-reported touch point countSame zephyrproject/zephyr package
  • Out-of-bounds read in IPv6 route forwarding when the nexthop neighbor has no link-layer addressSame zephyrproject/zephyr package
  • Unbounded variable-length array in fuel gauge syscall verifiers allows kernel stack overflow from user modeSame zephyrproject/zephyr package
  • Out-of-bounds write in the NXP MCUX TRNG entropy driver for non-word-multiple request lengthsSame zephyrproject/zephyr package
  • NULL pointer dereference in the ESP32 I2S driver when triggering an unsupported directionSame zephyrproject/zephyr package

Record context

Vulnerability class
Secret Exfiltration
EPSS
Not reported
CWE IDs
CWE-330
Source
CVE List V5
Source checked
Oct 11, 2026
References
2 linked sources
Open source record