GHSA-vvmg-8mjr-g6q3
MEDIUMGHSA-vvmg-8mjr-g6q3 is a medium-severity (CVSS 4.9) CWE-126 vulnerability in go.opentelemetry.io/obi. O3 Security confirms whether GHSA-vvmg-8mjr-g6q3 is actually reachable in your code before you act, and blocks exploitation at runtime until you patch.
OpenTelemetry eBPF Instrumentation: Log enricher writev path can overread and overwrite user buffers
Exploitation Status
Proof-of-concept exploit code exists
- CISA’s SSVC triage found public proof-of-concept exploit code for this CVE, though no confirmed active exploitation.
Exploitation and automatability from CISA’s SSVC triage for GHSA-vvmg-8mjr-g6q3.
EPSS Exploitation Probability
EPSS (Exploit Prediction Scoring System) is a daily probability model maintained by FIRST.org. It estimates the likelihood a CVE will be exploited in production environments within the next 30 days, derived from real-world threat intelligence signals.
How urgent is this, really
GHSA-vvmg-8mjr-g6q3 plotted by exploitation likelihood (EPSS) against impact (CVSS). The shaded corner — EPSS 50%+ and CVSS 7.0+ — is where this CVE doesn't sit, though severity or exploitability alone can still warrant action.
Where this sits among everything scored
Of 0 CVEs with a current EPSS score, this one falls in the < 10% band (highlighted). Real counts from FIRST.org, not a sample — log-scaled since the landscape is heavily right-skewed.
Real-World Exposure
go.opentelemetry.io/obiReal-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
OBI's log enricher mishandles writev buffers by reading only the first iovec entry but using the total iov_iter.count as the copy length. When log injection is enabled, a crafted multi-segment writev call can make OBI read and overwrite memory beyond the first segment.
Details
In bpf/logenricher/logenricher.c#L50, __fill_iov resolves only one struct iovec, specifically iov_ctx.iov[0] for ITER_IOVEC. The returned iov therefore describes only the first write segment.
However, __write later uses const size_t count = BPF_CORE_READ(from, count);, which is the total byte count across all segments in the iterator. That total is stored in e->len and used in bpf_probe_read_user(e->log, e->len, iov.iov_base) and bpf_probe_write_user(iov.iov_base, zero, to_write).
If count exceeds iov.iov_len, OBI reads and then zeroes memory past the end of the first segment. In practice, this can corrupt adjacent application buffers, leak memory into log events, and in some layouts destabilize the instrumented process.
PoC
Local testing with a minimal ASan harness reproduced the same out-of-bounds read/write condition as the vulnerable writev path.
Use a vulnerable build with the log enricher enabled.
git checkout v0.7.0
make build
Create a program that performs a two-element writev, where the first buffer is short and the second is large:
// save as /tmp/writev-poc.c
#define _GNU_SOURCE
#include <sys/uio.h>
#include <unistd.h>
#include <string.h>
int main(void) {
char a[8] = "HELLO\n";
char b[256];
memset(b, 'B', sizeof(b));
struct iovec iov[2];
iov[0].iov_base = a;
iov[0].iov_len = sizeof(a);
iov[1].iov_base = b;
iov[1].iov_len = sizeof(b);
for (;;) {
writev(1, iov, 2);
usleep(10000);
}
}
Compile and run it:
cc -O2 -o /tmp/writev-poc /tmp/writev-poc.c
/tmp/writev-poc >/dev/null
Attach OBI with log enrichment enabled to the running process:
PID=$(pgrep -f /tmp/writev-poc)
sudo ./bin/obi --pid "$PID"
On a vulnerable build, OBI copies iov_iter.count bytes starting from iov[0].iov_base, even though iov[0] is only 8 bytes long. Depending on allocator layout, you will see one of the following:
- log events that include bytes beyond
HELLO\n - corrupted stdout content because OBI zeroed memory beyond the first iovec
- process instability or a crash
The issue is easiest to observe under a debugger or with ASan-enabled builds of the target program, but those are not required.
Impact
This is a memory safety flaw in the log-enrichment eBPF path. It affects deployments that enable log injection and instrument applications that write logs through writev. An attacker who can trigger the vulnerable local writev pattern inside the instrumented process can cause memory corruption or disclosure in that process. The most direct effects are corrupted output and adjacent-memory disclosure, with process instability possible if the overwrite lands on sensitive state.
Affected Packages
| Ecosystem | Package | Vulnerable range | Fix |
|---|---|---|---|
| 🐹Go | go.opentelemetry.io/obi | ≥ 0.7.0&&< 0.9.0 | 0.9.0 |
Detection & mitigation playbook
Open-source dependencyDetect
Scan your dependency tree (package-lock.json, pnpm-lock.yaml, requirements.txt, go.sum, etc.) for go.opentelemetry.io/obi. 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 go.opentelemetry.io/obi to 0.9.0 or later, then make sure no transitive (indirect) dependency still pins the vulnerable range — O3 confirms GHSA-vvmg-8mjr-g6q3 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 GHSA-vvmg-8mjr-g6q3 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 GHSA-vvmg-8mjr-g6q3. Runtime protection reduces exposure until a permanent patch is applied and verified — it complements patching, it doesn't replace it.
Frequently Asked Questions
Is GHSA-vvmg-8mjr-g6q3 in your dependencies?
O3 detects GHSA-vvmg-8mjr-g6q3 across Go dependencies and uses function-level reachability to confirm whether the vulnerable code path is actually reachable — not just present. No false positives.