CVE-2026-53941
CVE-2026-53941 is a remote code execution vulnerability in github.com/inspektor-gadget/inspektor-gadget. O3 Security confirms whether CVE-2026-53941 is actually reachable in your code before you act, and blocks exploitation at runtime until you patch.
Uprobe gadgets: unprivileged container's ld.so.cache causes high CPU utilization and container startup DoS
Real-World Exposure
github.com/inspektor-gadget/inspektor-gadgetReal-time download stats are indexed for npm and PyPI packages. This vulnerability affects Go packages — download data is not available via public APIs for these ecosystems.
Description
Summary
An unprivileged container can block all other containers from starting on the
same host by placing a crafted /etc/ld.so.cache file in its filesystem. When
Inspektor Gadget attaches any uprobe-based gadget, it parses this file in the
container startup path. A malicious cache causes ~53 seconds of CPU burn,
during which Docker cannot start any other container. No special capabilities
are required.
Severity
To be assessed — Availability impact, no confidentiality or integrity impact.
Affected Versions
All versions of Inspektor Gadget that support uprobe-based gadgets (trace_malloc, trace_open, trace_ssl, trace_grpc, etc.).
Description
When Inspektor Gadget attaches uprobe-based gadgets to containers, it resolves library paths by parsing the container's /etc/ld.so.cache file (pkg/uprobetracer/ldcache_parser.go). This file is fully controlled by the container.
The parser has three vulnerabilities:
-
Quadratic string building (
pkg/uprobetracer/bytes.go:36-44): ThereadStringFromBytesfunction concatenates one byte at a time (res += string(data[i])), which is O(n²) in Go due to string immutability. With a 16MB cache file containing large regions without null terminators, this causes massive CPU and memory churn. -
Insufficient entry count validation (
pkg/uprobetracer/ldcache_parser.go:120): TheEntryCountfield is read directly from the untrusted file. While a per-entry bounds check prevents out-of-bounds access, the loop still iterates up to(fileSize - headerSize) / entrySize ≈ 700,000times, callingreadStringFromByteson each iteration. -
Integer overflow in format detection (
pkg/uprobetracer/ldcache_parser.go:174): Thecache1Lencomputation uses uint32 arithmetic (ldCache1Size + cache1.EntryCount*ldCache1EntrySize). With a craftedEntryCount, this overflows and produces a small value, causing the parser to misidentify the cache format.
Combined, these cause ~53 seconds of CPU burn per container attachment when a crafted 16MB /etc/ld.so.cache is present.
Impact
- Container runtime DoS: IG uses fanotify hooks (
pkg/container-hook) to pause container startup until uprobe attachment completes. While IG is blocked processing the malicious cache, this pause is held, and Docker serializes container starts — meaning no other container can start on the host until IG finishes. This effectively causes a denial of service on the entire container runtime, not just on IG itself. - Container startup delay: When any uprobe-based gadget is running (trace_malloc, trace_ssl, etc.), starting a container with a crafted ld.so.cache delays startup by ~1 minute.
- Monitoring degradation: The IG daemon is blocked processing the malicious cache, potentially missing events from other containers.
- Amplification: Multiple containers with crafted caches can be started simultaneously to amplify the effect.
- No special privileges required: Any container can include a crafted
/etc/ld.so.cachein its image, mount one via a volume, or overwrite it at runtime before IG starts a uprobe gadget. In this last case, IG inspects all already-running containers when the gadget starts — this still burns CPU but does not block other containers from starting (since the fanotify pause only applies to new container starts).
Root Cause Analysis
In pkg/uprobetracer/ldcache_parser.go, the function readCacheFormat2 is called with the full file content:
for i := uint32(0); i < ldCache.EntryCount; i++ {
entryOffset := ldEntriesOffset + i*ldCache2EntrySize
if uint32(len(data)) <= entryOffset+ldCache2EntrySize {
return nil // bounds check stops iteration
}
// ... reads entry ...
key := readStringFromBytes(data, keyOffset) // O(n²) per call
value := readStringFromBytes(data, valueOffset) // O(n²) per call
}
The per-entry bounds check correctly prevents out-of-bounds access, but:
- The loop iterates ~700K times (limited by file size, not EntryCount)
- Each
readStringFromBytescall uses quadratic string concatenation
In pkg/uprobetracer/bytes.go:
func readStringFromBytes(data []byte, startPos uint32) string {
res := ""
for i := startPos; i < uint32(len(data)); i++ {
if data[i] == 0 {
return res
}
res += string(data[i]) // O(n²) — allocates new string each iteration
}
return ""
}
Note on Slice Bounds Checks
The code also performs slice accesses without proper bounds checks (e.g.,
data[:len(cache2Header)] when data may be shorter than 20 bytes, and
ldCacheFile[:len(cache1Header)] when the file may be shorter than 11 bytes).
In practice, a malicious container cannot currently trigger a panic from these
missing checks. This is because Go's io.ReadAll (used to read the file) always
returns slices with cap >= 512 due to its initial buffer allocation
(make([]byte, 0, 512) in Go's standard library). In Go, s[:n] only panics
when n > cap(s), not when n > len(s). Since both header lengths (11 and 20)
are well below 512, the slice expressions succeed — they simply read zero bytes
beyond len, which don't match any valid header magic.
However, this relies on an undocumented implementation detail of io.ReadAll
which could change in future Go versions. The bounds checks are still necessary
for correctness and defense in depth.
Affected Packages
| Ecosystem | Package | Vulnerable range | Fix |
|---|---|---|---|
| 🐹Go | github.com/inspektor-gadget/inspektor-gadget | ≥ 0.27.0&&< 0.53.1 | 0.53.1 |
Detection & mitigation playbook
Open-source dependencyDetect
Scan your dependency tree (package-lock.json, pnpm-lock.yaml, requirements.txt, go.sum, etc.) for github.com/inspektor-gadget/inspektor-gadget. O3's reachability analysis confirms whether the vulnerable code path is actually invoked in your application, so you act on real exposure instead of every transitive match.
Fix
Update github.com/inspektor-gadget/inspektor-gadget to 0.53.1 or later, then make sure no transitive (indirect) dependency still pins the vulnerable range — O3 confirms CVE-2026-53941 is resolved across your whole dependency graph.
Workarounds
If you can't upgrade right away: gate or disable the affected feature, validate untrusted input at the boundary, and avoid passing attacker-controlled data into the vulnerable path. O3's runtime protection blocks exploitation in production as an interim safeguard until the upgrade lands.
How O3 protects you
O3 pinpoints whether CVE-2026-53941 is reachable in your code and exactly where to fix it, then blocks exploitation in production at runtime until the patched version is deployed.
Tailored to CVE-2026-53941. Runtime protection reduces exposure until a permanent patch is applied and verified — it complements patching, it doesn't replace it.
Frequently Asked Questions
Is CVE-2026-53941 in your dependencies?
O3 detects CVE-2026-53941 across Go dependencies and uses function-level reachability to confirm whether the vulnerable code path is actually reachable — not just present. No false positives.