feat(ics): EtherNet/IP probe + OT service-discovery port scan [#148] #175

Merged
sharang merged 1 commits from feat/ics-portscan-enip into main 2026-07-16 16:48:23 +00:00
3 changed files with 324 additions and 4 deletions
@@ -0,0 +1,95 @@
//! Minimal EtherNet/IP (CIP) reachability probe.
//!
//! Sends an EtherNet/IP encapsulation **ListIdentity** command (0x0063) over TCP
//! 44818 and checks for a valid encapsulation reply — confirming a CIP device
//! without opening a session or writing anything.
use std::time::Duration;
use tokio::io::{AsyncReadExt, AsyncWriteExt};
use tokio::net::TcpStream;
use tokio::time::timeout;
/// Outcome of an EtherNet/IP handshake probe.
#[derive(Debug, Default, PartialEq, Eq)]
pub struct EnipProbe {
/// A TCP connection to the port was established.
pub reachable: bool,
/// The endpoint returned a valid EtherNet/IP encapsulation reply.
pub is_enip: bool,
}
/// Probe an EtherNet/IP endpoint with a ListIdentity request. Read-only.
pub async fn probe(host: &str, port: u16, budget: Duration) -> EnipProbe {
let mut out = EnipProbe::default();
let Ok(Ok(mut stream)) = timeout(budget, TcpStream::connect((host, port))).await else {
return out;
};
out.reachable = true;
// Encapsulation header (24 bytes): command(2) length(2) session(4) status(4)
// context(8) options(4). ListIdentity = command 0x0063, everything else zero.
let mut req = vec![0u8; 24];
req[0..2].copy_from_slice(&0x0063u16.to_le_bytes());
if timeout(budget, stream.write_all(&req))
.await
.ok()
.and_then(Result::ok)
.is_none()
{
return out;
}
let mut hdr = [0u8; 24];
if timeout(budget, stream.read_exact(&mut hdr))
.await
.ok()
.and_then(Result::ok)
.is_none()
{
return out;
}
let command = u16::from_le_bytes([hdr[0], hdr[1]]);
let status = u32::from_le_bytes([hdr[8], hdr[9], hdr[10], hdr[11]]);
// Echoed command + success status = a valid EtherNet/IP encapsulation reply.
if command == 0x0063 && status == 0 {
out.is_enip = true;
}
out
}
#[cfg(test)]
mod tests {
use super::*;
use tokio::net::TcpListener;
async fn mock_server() -> std::net::SocketAddr {
let listener = TcpListener::bind("127.0.0.1:0").await.expect("bind");
let addr = listener.local_addr().expect("addr");
tokio::spawn(async move {
let (mut sock, _) = listener.accept().await.expect("accept");
let mut req = [0u8; 24];
if sock.read_exact(&mut req).await.is_err() {
return;
}
// Reply: echo command 0x0063, status 0, no data.
let mut hdr = vec![0u8; 24];
hdr[0..2].copy_from_slice(&0x0063u16.to_le_bytes());
let _ = sock.write_all(&hdr).await;
});
addr
}
#[tokio::test]
async fn probe_detects_an_ethernetip_device() {
let addr = mock_server().await;
let p = probe(&addr.ip().to_string(), addr.port(), Duration::from_secs(2)).await;
assert!(p.reachable && p.is_enip);
}
#[tokio::test]
async fn probe_reports_unreachable_for_a_closed_port() {
let p = probe("127.0.0.1", 1, Duration::from_millis(500)).await;
assert!(!p.reachable && !p.is_enip);
}
}
+92 -4
View File
@@ -5,8 +5,10 @@
//! unauthenticated control interfaces. It is read-only: it never writes to a live //! unauthenticated control interfaces. It is read-only: it never writes to a live
//! process. Modbus/TCP and OPC UA are implemented; EtherNet-IP is a follow-on. //! process. Modbus/TCP and OPC UA are implemented; EtherNet-IP is a follow-on.
pub mod ethernetip;
pub mod modbus; pub mod modbus;
pub mod opcua; pub mod opcua;
pub mod portscan;
use std::time::Duration; use std::time::Duration;
@@ -14,17 +16,21 @@ use compliance_core::models::{Finding, ScanType, Severity};
use crate::pipeline::dedup; use crate::pipeline::dedup;
/// Default Modbus/TCP and OPC UA ports (each on its own well-known port, /// Well-known deep-probe ports (each independent of any WebVisu HTTP port).
/// independent of any WebVisu HTTP port).
const MODBUS_PORT: u16 = 502; const MODBUS_PORT: u16 = 502;
const OPCUA_PORT: u16 = 4840; const OPCUA_PORT: u16 = 4840;
const ENIP_PORT: u16 = 44818;
/// Probe a PLC/SPS device's industrial-protocol surface (Modbus/TCP + OPC UA) and /// Probe a PLC/SPS device's industrial-protocol surface and return findings.
/// return findings. Read-only. `endpoint` is the target's live-URL / host reference. /// Read-only. Deep-probes Modbus/TCP, OPC UA and EtherNet/IP, plus a service
/// discovery scan of the remaining OT / insecure-management ports. `endpoint` is
/// the target's live-URL / host reference.
pub async fn probe_target(endpoint: &str, repo_id: &str, budget: Duration) -> Vec<Finding> { pub async fn probe_target(endpoint: &str, repo_id: &str, budget: Duration) -> Vec<Finding> {
let (host, modbus_port) = parse_endpoint(endpoint); let (host, modbus_port) = parse_endpoint(endpoint);
let mut findings = modbus_findings(&host, modbus_port, repo_id, budget).await; let mut findings = modbus_findings(&host, modbus_port, repo_id, budget).await;
findings.extend(opcua_findings(&host, OPCUA_PORT, repo_id, budget).await); findings.extend(opcua_findings(&host, OPCUA_PORT, repo_id, budget).await);
findings.extend(enip_findings(&host, ENIP_PORT, repo_id, budget).await);
findings.extend(portscan_findings(&host, repo_id, budget).await);
findings findings
} }
@@ -137,6 +143,88 @@ async fn opcua_findings(host: &str, port: u16, repo_id: &str, budget: Duration)
findings findings
} }
/// Findings from probing the EtherNet/IP (CIP) surface (default port 44818).
async fn enip_findings(host: &str, port: u16, repo_id: &str, budget: Duration) -> Vec<Finding> {
let probe = ethernetip::probe(host, port, budget).await;
if !probe.is_enip {
return Vec::new();
}
let target = format!("{host}:{port}");
let fp = dedup::compute_fingerprint(&[repo_id, "ics-ethernetip-exposed", &target]);
let mut f = Finding::new(
repo_id.to_string(),
fp,
"ics-probe".to_string(),
ScanType::IcsProbe,
"EtherNet/IP (CIP) interface exposed on the network".to_string(),
format!(
"The device at {target} answers EtherNet/IP (CIP) requests. EtherNet/IP has no \
authentication in the base protocol, so a host that can reach it can enumerate \
and interact with the device's control objects."
),
Severity::High,
);
f.rule_id = Some("ics-ethernetip-exposed".to_string());
f.cwe = Some("CWE-306".to_string());
f.remediation = Some(
"Restrict EtherNet/IP (44818/2222) to a trusted control network; use CIP Security \
(encryption + authentication) on devices that support it."
.to_string(),
);
vec![f]
}
/// Findings from the service-discovery port scan of the remaining OT /
/// insecure-management surface.
async fn portscan_findings(host: &str, repo_id: &str, budget: Duration) -> Vec<Finding> {
let open = portscan::scan(host, portscan::KNOWN_PORTS, budget).await;
open.into_iter()
.map(|kp| {
let target = format!("{host}:{}", kp.port);
let (title, severity, cwe, description) = match kp.kind {
portscan::PortKind::Ics => (
format!("ICS service exposed: {}", kp.service),
Severity::High,
"CWE-306",
format!(
"{target} exposes {} ({}). Industrial protocols are typically \
unauthenticated, so network reach implies control access.",
kp.service, kp.note
),
),
portscan::PortKind::InsecureMgmt => (
format!("Cleartext service exposed: {}", kp.service),
Severity::Medium,
"CWE-319",
format!(
"{target} exposes {} ({}), which transmits credentials and data in \
cleartext.",
kp.service, kp.note
),
),
};
let fp = dedup::compute_fingerprint(&[repo_id, "ics-service-exposed", &target]);
let mut f = Finding::new(
repo_id.to_string(),
fp,
"ics-probe".to_string(),
ScanType::IcsProbe,
title,
description,
severity,
);
f.rule_id = Some("ics-service-exposed".to_string());
f.cwe = Some(cwe.to_string());
f.remediation = Some(
"Restrict the service to a trusted network segment; disable it if unused; \
replace cleartext protocols (Telnet/FTP) with SSH/SFTP."
.to_string(),
);
f
})
.collect()
}
/// Extract `(host, port)` from a target reference. Modbus lives on its own port /// Extract `(host, port)` from a target reference. Modbus lives on its own port
/// (502 by default), independent of any HTTP/WebVisu URL, so unless the reference /// (502 by default), independent of any HTTP/WebVisu URL, so unless the reference
/// explicitly carries `modbus://host:port` or a bare `host:port`, we probe 502. /// explicitly carries `modbus://host:port` or a bare `host:port`, we probe 502.
@@ -0,0 +1,137 @@
//! TCP service discovery for a device.
//!
//! Connect-scans a curated set of OT/ICS and insecure-management ports and reports
//! the ones that are open. The deep protocol probes own Modbus (502), OPC UA
//! (4840) and EtherNet/IP (44818); this surfaces the *rest* of the industrial and
//! cleartext-management surface (Siemens S7, DNP3, CODESYS programming, Telnet, …).
use std::time::Duration;
use futures_util::future::join_all;
use tokio::net::TcpStream;
use tokio::time::timeout;
/// Whether an open port is an industrial protocol or an insecure management service.
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
pub enum PortKind {
/// An industrial control protocol (typically unauthenticated).
Ics,
/// A cleartext management service (credentials/data in the clear).
InsecureMgmt,
}
/// A well-known port worth flagging when open.
#[derive(Debug, Clone, Copy)]
pub struct KnownPort {
pub port: u16,
pub service: &'static str,
pub kind: PortKind,
pub note: &'static str,
}
/// The curated scan list. Excludes 502 / 4840 / 44818 — those have dedicated deep
/// probes (Modbus, OPC UA, EtherNet/IP) that report richer findings.
pub const KNOWN_PORTS: &[KnownPort] = &[
KnownPort {
port: 102,
service: "S7comm / ISO-TSAP",
kind: PortKind::Ics,
note: "Siemens S7 PLC communication",
},
KnownPort {
port: 20000,
service: "DNP3",
kind: PortKind::Ics,
note: "SCADA / DNP3",
},
KnownPort {
port: 1911,
service: "Niagara Fox",
kind: PortKind::Ics,
note: "Tridium Niagara building automation",
},
KnownPort {
port: 11740,
service: "CODESYS",
kind: PortKind::Ics,
note: "CODESYS programming protocol",
},
KnownPort {
port: 1962,
service: "PCWorx",
kind: PortKind::Ics,
note: "Phoenix Contact PCWorx",
},
KnownPort {
port: 9600,
service: "OMRON FINS",
kind: PortKind::Ics,
note: "Omron FINS",
},
KnownPort {
port: 789,
service: "Red Lion Crimson",
kind: PortKind::Ics,
note: "Red Lion controllers",
},
KnownPort {
port: 23,
service: "Telnet",
kind: PortKind::InsecureMgmt,
note: "cleartext remote shell",
},
KnownPort {
port: 21,
service: "FTP",
kind: PortKind::InsecureMgmt,
note: "cleartext file transfer",
},
];
/// Connect-scan `ports` on `host` (concurrently) and return those that accept a
/// TCP connection.
pub async fn scan<'a>(host: &str, ports: &'a [KnownPort], budget: Duration) -> Vec<&'a KnownPort> {
let checks = ports.iter().map(|kp| async move {
let open = timeout(budget, TcpStream::connect((host, kp.port)))
.await
.map(|r| r.is_ok())
.unwrap_or(false);
(kp, open)
});
join_all(checks)
.await
.into_iter()
.filter_map(|(kp, open)| open.then_some(kp))
.collect()
}
#[cfg(test)]
mod tests {
use super::*;
use tokio::net::TcpListener;
#[tokio::test]
async fn scan_reports_only_open_ports() {
// Bind one port (open) and pick another that is closed.
let listener = TcpListener::bind("127.0.0.1:0").await.expect("bind");
let open_port = listener.local_addr().expect("addr").port();
let ports = [
KnownPort {
port: open_port,
service: "test-open",
kind: PortKind::Ics,
note: "",
},
KnownPort {
port: 1,
service: "test-closed",
kind: PortKind::InsecureMgmt,
note: "",
},
];
let found = scan("127.0.0.1", &ports, Duration::from_millis(500)).await;
let services: Vec<&str> = found.iter().map(|p| p.service).collect();
assert_eq!(services, vec!["test-open"]);
}
}