CVE-2026-59879

ADVISORY - github

Summary

Summary

List#set, List#setSize, List#setIn, List#updateIn (and the functional set / setIn / updateIn) mishandle an index or size in the range [2 ** 30, 2 ** 31):

  • On an empty List the operation enters an uncatchable infinite loop (a tight CPU spin; a surrounding try/catch never regains control). Only killing the worker recovers it.
  • On a populated List (≥ 32 elements — i.e. any array of ≥ 32 items turned into a List by fromJS) the loop allocates without bound → heap exhaustion → the process aborts (SIGABRT, exit 134, or kernel OOM-kill 137). A real crash, not a recoverable error.

The index may be a numeric string, so it can come straight from a request body, URL, or key-path. A single small unauthenticated request is enough.

There is also a companion silent data-corruption issue in setSize:

List([1, 2, 3]).setSize(2 ** 31); // before fix => size 0  (silently cleared)
List([1, 2, 3]).setSize(2 ** 32 + 5); // before fix => size 5  (huge value wraps to 5)

Impact

Availability only. A reachable configuration is any endpoint that routes untrusted input into a List index or a setIn/updateIn key-path — which the extremely common state = fromJS(body); state.setIn(userPath, value) pattern does (config stores, document/collection editors, redux-immutable reducers, JSON-Patch endpoints, etc.).

No confidentiality or integrity impact, no RCE. The companion setSize bug can silently corrupt application state (wrong size) without crashing.

Reproduction (immutable 5.1.7)

import { fromJS, List } from 'immutable';

// 1) Populated List: OOM -> process abort (SIGABRT, exit 134) within ~2s
fromJS({ items: new Array(64).fill(0) }).setIn(['items', '1073741824'], 'x');

// 2) Empty List: hangs forever, uncatchable
List().set(2 ** 30, 'x');

// 3) Silent truncation
List([1, 2, 3]).setSize(2 ** 31); // => size 0
List([1, 2, 3]).setSize(2 ** 32 + 5); // => size 5

A remote 43-byte HTTP request ({"path":["items","1073741824"],"value":"x"}) is sufficient to abort a worker that applies it via state = state.setIn(path, value).

Any index in [2 ** 30, 2 ** 31) works (1073741824, 2000000000, …). An index in [2 ** 31, 2 ** 32) does not crash — it silently wraps (clearing the List) via the same root cause.

Root cause

List stores its values in a 32-wide trie (SHIFT = 5, so each level addresses 5 more bits) and uses signed 32-bit bitwise arithmetic throughout setListBounds() (src/List.js):

  1. Infinite loop (the hang / OOM). The level-raising loop
while (newTailOffset >= 1 << (newLevel + SHIFT)) {
  newRoot = new VNode(
    newRoot && newRoot.array.length ? [newRoot] : [],
    owner
  );
  newLevel += SHIFT;
}

relies on 1 << (newLevel + SHIFT). A JavaScript shift count is taken mod 32, so once newLevel + SHIFT reaches 31 the term goes negative (1 << 31 === -2147483648) and at 32 wraps to 1 (1 << 35 === 8). The comparison then stays true forever and the loop never terminates. On a populated List, each iteration retains a new VNode ([newRoot]), so the heap fills and V8 aborts; on an empty List it spins on CPU without allocating.

  1. Silent wraparound (the setSize corruption). The begin |= 0 / end |= 0 coercion (ToInt32) silently wraps large finite values ((2 ** 31) | 0 === -2147483648, (2 ** 32 + 5) | 0 === 5), producing a wrong resulting size instead of an error.

The threshold is 2 ** 30: that is the largest size for which 1 << (newLevel + SHIFT) stays a valid positive 32-bit integer throughout the loops (newLevel + SHIFT stays ≤ 30).

Remediation

The fix is contained to setListBounds() in src/List.js:

  1. Validate up front, before the lossy | 0 coercion. Compute the intended origin and capacity in full precision and throw a clear, catchable RangeError when they exceed the addressable range (MAX_LIST_SIZE = 2 ** 30). Infinity/NaN are left to the existing | 0 → 0 behaviour (so setSize(Infinity) stays 0 and slice(0, Infinity) still means "to the end").

  2. Stop the shift from wrapping. Replace 1 << exp in the level-raising loops with a helper that uses the cheap bitwise shift while it is exact (exp ≤ 30, the common path including every push/setSize/slice) and falls back to the non-wrapping 2 ** exp only for the rare deep trees reached when a negative origin (unshift / negative index) is normalized to a large positive capacity (exp can reach 35 there, where 1 << 35 would wrap to 8).

This turns every hang, the misleading "Maximum call stack size exceeded", the OOM/SIGABRT, and the silent setSize truncation into one descriptive RangeError, preserves all behaviour for sizes < 2 ** 30, and keeps the hot push path on the fast bitwise shift (the 2 ** exp branch is never reached by non-negative operations).

Is the new limit a breaking change?

No working code is affected. A List could never actually hold ≥ 2 ** 30 values before — the attempt hung, crashed, or silently corrupted the size. The limit was already implicit in the 32-bit trie; the fix only makes it explicit and catchable, mirroring native JS arrays (new Array(2 ** 32)RangeError: Invalid array length). The single observable behaviour change is that setSize(hugeValue), which used to return a silently wrong size, now throws. 2 ** 30 ≈ 1.07 billion entries (~8 GB of pointers alone), far beyond any practical use.

Mitigations (for users who cannot upgrade immediately)

  • Validate/clamp any externally supplied List index or setIn/updateIn key-path segment against a sane maximum before passing it to immutable.
  • Reject numeric path segments ≥ 2 ** 30.
  • Run request handling in a worker that can be restarted, and cap the heap (--max-old-space-size) so an abort is contained.
EPSS Score: 0.0037 (0.294)

Common Weakness Enumeration (CWE)

ADVISORY - github

Improper Validation of Specified Quantity in Input

Integer Overflow or Wraparound

Uncontrolled Resource Consumption

Loop with Unreachable Exit Condition ('Infinite Loop')


GitHub

CREATED

UPDATED

EXPLOITABILITY SCORE

3.9

EXPLOITS FOUND
-
COMMON WEAKNESS ENUMERATION (CWE)

CVSS SCORE

8.7high
PackageTypeOS NameOS VersionAffected RangesFix Versions
immutablenpm-->=5.0.0-beta.1,<5.1.85.1.8
immutablenpm--<4.3.94.3.9

CVSS:4 Severity and metrics

The CVSS metrics represent different qualitative aspects of a vulnerability that impact the overall score, as defined by the CVSS Specification.

The vulnerable component is bound to the network stack, but the attack is limited at the protocol level to a logically adjacent topology. This can mean an attack must be launched from the same shared physical (e.g., Bluetooth or IEEE 802.11) or logical (e.g., local IP subnet) network, or from within a secure or otherwise limited administrative domain (e.g., MPLS, secure VPN to an administrative network zone). One example of an Adjacent attack would be an ARP (IPv4) or neighbor discovery (IPv6) flood leading to a denial of service on the local LAN segment (e.g., CVE-2013-6014).

Specialized access conditions or extenuating circumstances do not exist. An attacker can expect repeatable success when attacking the vulnerable component.

The successful attack does not depend on the deployment and execution conditions of the vulnerable system. The attacker can expect to be able to reach the vulnerability and execute the exploit under all or most instances of the vulnerability.

The attacker is unauthenticated prior to attack, and therefore does not require any access to settings or files of the vulnerable system to carry out an attack.

The vulnerable system can be exploited without interaction from any human user, other than the attacker. Examples include: a remote attacker is able to send packets to a target system a locally authenticated attacker executes code to elevate privileges.

There is no loss of confidentiality within the Vulnerable System.

There is no loss of confidentiality within the Subsequent System or all confidentiality impact is constrained to the Vulnerable System.

There is no loss of integrity within the Vulnerable System.

There is no loss of integrity within the Subsequent System or all integrity impact is constrained to the Vulnerable System.

There is a total loss of availability, resulting in the attacker being able to fully deny access to resources in the Vulnerable System; this loss is either sustained (while the attacker continues to deliver the attack) or persistent (the condition persists even after the attack has completed). Alternatively, the attacker has the ability to deny some availability, but the loss of availability presents a direct, serious consequence to the Vulnerable System (e.g., the attacker cannot disrupt existing connections, but can prevent new connections; the attacker can repeatedly exploit a vulnerability that, in each instance of a successful attack, leaks a only small amount of memory, but after repeated exploitation causes a service to become completely unavailable).

There is no impact to availability within the Subsequent System or all availability impact is constrained to the Vulnerable System.

Debian

CREATED

UPDATED

EXPLOITABILITY SCORE

-

EXPLOITS FOUND
-
COMMON WEAKNESS ENUMERATION (CWE)-
RATING UNAVAILABLE FROM ADVISORY

Ubuntu

CREATED

UPDATED

EXPLOITABILITY SCORE

3.9

EXPLOITS FOUND
-
COMMON WEAKNESS ENUMERATION (CWE)-

CVSS SCORE

7.5medium