eggress-core 1.0.10

Core types, traits, and infrastructure for eggress proxy
Documentation
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use std::net::{IpAddr, Ipv6Addr, SocketAddr};

use tokio::net::TcpStream;

use crate::{BoxStream, ConnectError, TargetAddr, TargetHost};

/// Returns `true` if the IP address is reserved, private, or otherwise
/// unsuitable for direct outbound connections (DNS rebinding protection).
///
/// Used as a domain-resolution guard: after resolving a domain name,
/// this checks whether the result points to a private/reserved/special-use
/// range. Literal IP targets have a separate opt-in check so explicit
/// local/LAN destinations remain compatible by default. The DNS guard is
/// enabled by default; callers that require pproxy-compatible permissive
/// behavior must explicitly disable it.
///
/// Rejected ranges:
/// - IPv4: loopback (127.0.0.0/8), link-local (169.254.0.0/16),
///   private (10.0.0.0/8, 172.16.0.0/12, 192.168.0.0/16), unspecified (0.0.0.0),
///   broadcast (255.255.255.255), multicast (224.0.0.0/4),
///   documentation (192.0.2.0/24, 198.51.100.0/24, 203.0.113.0/24),
///   benchmarking (198.18.0.0/15), reserved future (240.0.0.0/4),
///   this-network (0.0.0.0/8)
/// - IPv6: loopback (::1), link-local (fe80::/10), unique-local (fc00::/7),
///   unspecified (::), multicast (ff00::/8),
///   documentation (2001:db8::/32), discard prefix (0100::/64)
pub fn is_reserved_or_private_ip(ip: &IpAddr) -> bool {
    match ip {
        IpAddr::V4(v4) => {
            v4.is_loopback()
                || v4.is_link_local()
                || v4.is_private()
                || v4.is_unspecified()
                || v4.is_multicast()
                || v4.is_broadcast()
                || is_v4_documentation(v4)
                || is_v4_benchmarking(v4)
                || is_v4_reserved(v4)
                || is_v4_this_network(v4)
        }
        IpAddr::V6(v6) => {
            // IPv4-mapped IPv6 addresses are another representation of an
            // IPv4 destination. Treat them identically so `::ffff:127.0.0.1`
            // cannot bypass the private/reserved-address guard.
            if let Some(v4) = v6.to_ipv4_mapped() {
                return is_reserved_or_private_ip(&IpAddr::V4(v4));
            }
            v6.is_loopback()
                || v6.is_unspecified()
                || v6.is_multicast()
                || is_v6_documentation(v6)
                || is_unicast_link_local_v6(v6)
                || is_unique_local_v6(v6)
                || is_v6_discard_prefix(v6)
        }
    }
}

/// Check if an IPv6 address is in the fc00::/7 unique-local range.
fn is_unique_local_v6(ip: &Ipv6Addr) -> bool {
    let octets = ip.octets();
    (octets[0] & 0xfe) == 0xfc
}

/// Check if an IPv6 address is in the fe80::/10 link-local unicast range.
fn is_unicast_link_local_v6(ip: &Ipv6Addr) -> bool {
    let octets = ip.octets();
    octets[0] == 0xfe && (octets[1] & 0xc0) == 0x80
}

/// Check if an IPv6 address is in the 0100::/64 discard prefix.
fn is_v6_discard_prefix(ip: &Ipv6Addr) -> bool {
    let octets = ip.octets();
    octets[0] == 0x01 && octets[1..8].iter().all(|b| *b == 0)
}

/// Check if an IPv4 address is in the 0.0.0.0/8 "this network" range.
fn is_v4_this_network(ip: &std::net::Ipv4Addr) -> bool {
    ip.octets()[0] == 0
}

/// Check if an IPv4 address is in any of the documentation ranges
/// (TEST-NET-1: 192.0.2.0/24, TEST-NET-2: 198.51.100.0/24,
/// TEST-NET-3: 203.0.113.0/24, 192.88.99.0/24).
fn is_v4_documentation(ip: &std::net::Ipv4Addr) -> bool {
    let octets = ip.octets();
    matches!(
        octets,
        [192, 0, 2, _] | [198, 51, 100, _] | [203, 0, 113, _] | [192, 88, 99, _]
    )
}

/// Check if an IPv4 address is in the benchmarking range (198.18.0.0/15).
fn is_v4_benchmarking(ip: &std::net::Ipv4Addr) -> bool {
    let octets = ip.octets();
    octets[0] == 198 && (octets[1] == 18 || octets[1] == 19)
}

/// Check if an IPv4 address is in the reserved-for-future-use range
/// (240.0.0.0/4 — first octet >= 240, including 255.0.0.0/8; the single
/// broadcast address is additionally classified elsewhere).
fn is_v4_reserved(ip: &std::net::Ipv4Addr) -> bool {
    ip.octets()[0] >= 240
}

/// Check if an IPv6 address is in the documentation range (2001:db8::/32).
fn is_v6_documentation(ip: &Ipv6Addr) -> bool {
    let octets = ip.octets();
    octets[0] == 0x20 && octets[1] == 0x01 && octets[2] == 0x0d && octets[3] == 0xb8
}

/// Check if a resolved IP address represents a DNS rebinding risk.
pub fn is_dns_rebinding_risk(ip: &IpAddr) -> bool {
    is_reserved_or_private_ip(ip)
}

/// Trait for connecting to target servers.
#[trait_variant::make(Connector: Send)]
pub trait LocalConnector {
    async fn connect(&self, target: &TargetAddr) -> Result<BoxStream, ConnectError>;
}

/// Connector that makes direct TCP connections.
pub struct DirectConnector;

/// Socket addresses observed on an established TCP connection.
///
/// These values describe the socket actually connected, not a separately
/// resolved endpoint. Address lookup failures leave only the affected field
/// absent and do not fail the connection.
#[derive(Debug, Clone, Copy, Default, PartialEq, Eq)]
pub struct ConnectionMetadata {
    local_addr: Option<SocketAddr>,
    peer_addr: Option<SocketAddr>,
}

impl ConnectionMetadata {
    pub fn local_addr(&self) -> Option<SocketAddr> {
        self.local_addr
    }

    pub fn peer_addr(&self) -> Option<SocketAddr> {
        self.peer_addr
    }
}

/// Connect options for one outbound socket.
#[derive(Debug, Clone)]
pub struct ConnectOptions {
    pub local_bind: Option<SocketAddr>,
    /// Reject DNS results in reserved/private ranges. Literal IP targets are
    /// intentionally allowed for explicit local/LAN proxy compatibility.
    pub enforce_dns_rebinding_check: bool,
    /// Also reject literal IP targets in reserved/private ranges when the
    /// caller is operating a stricter security boundary.
    pub enforce_literal_ip_check: bool,
}

impl Default for ConnectOptions {
    fn default() -> Self {
        Self {
            local_bind: None,
            enforce_dns_rebinding_check: true,
            enforce_literal_ip_check: false,
        }
    }
}

impl DirectConnector {
    pub async fn connect_with_options(
        &self,
        target: &TargetAddr,
        options: &ConnectOptions,
    ) -> Result<BoxStream, ConnectError> {
        self.connect_with_options_and_metadata(target, options)
            .await
            .map(|(stream, _)| stream)
    }

    /// Connect and return metadata captured from the established TCP socket.
    pub async fn connect_with_options_and_metadata(
        &self,
        target: &TargetAddr,
        options: &ConnectOptions,
    ) -> Result<(BoxStream, ConnectionMetadata), ConnectError> {
        let addrs = resolve_target(
            target,
            options.enforce_dns_rebinding_check,
            options.enforce_literal_ip_check,
        )
        .await?;
        connect_to_addrs(&addrs, options.local_bind).await
    }
}

async fn connect_to_addrs(
    addrs: &[SocketAddr],
    local_bind: Option<SocketAddr>,
) -> Result<(BoxStream, ConnectionMetadata), ConnectError> {
    let mut last_error = None;
    for &addr in addrs {
        let result = if let Some(local) = local_bind {
            let local = match local {
                SocketAddr::V6(local) => local
                    .ip()
                    .to_ipv4_mapped()
                    .map(|ip| SocketAddr::new(ip.into(), local.port()))
                    .unwrap_or(local.into()),
                local => local,
            };
            let socket = if local.is_ipv4() {
                tokio::net::TcpSocket::new_v4()
            } else {
                tokio::net::TcpSocket::new_v6()
            }
            .map_err(ConnectError::Io)?;
            socket.bind(local).map_err(ConnectError::Io)?;
            socket.connect(addr).await.map_err(ConnectError::Io)
        } else {
            TcpStream::connect(addr).await.map_err(ConnectError::Io)
        };
        match result {
            Ok(stream) => {
                let metadata = ConnectionMetadata {
                    local_addr: stream.local_addr().ok(),
                    peer_addr: stream.peer_addr().ok(),
                };
                return Ok((Box::new(stream), metadata));
            }
            Err(error) => last_error = Some(error),
        }
    }
    Err(last_error.unwrap_or_else(|| ConnectError::DnsResolution("no addresses found".to_string())))
}

async fn resolve_target(
    target: &TargetAddr,
    enforce_dns_rebinding_check: bool,
    enforce_literal_ip_check: bool,
) -> Result<Vec<SocketAddr>, ConnectError> {
    match &target.host {
        TargetHost::Ip(ip) => {
            if enforce_literal_ip_check && is_dns_rebinding_risk(ip) {
                return Err(ConnectError::ReservedTarget(*ip));
            }
            Ok(vec![SocketAddr::new(*ip, target.port)])
        }
        TargetHost::Domain(domain) => {
            let lookup = format!("{}:{}", domain, target.port);
            let addrs: Vec<_> = tokio::net::lookup_host(&lookup)
                .await
                .map_err(|e| ConnectError::DnsResolution(e.to_string()))?
                .collect();
            if addrs.is_empty() {
                return Err(ConnectError::DnsResolution(
                    "no addresses found".to_string(),
                ));
            }
            if enforce_dns_rebinding_check {
                if let Some(reserved) = addrs.iter().find(|addr| is_dns_rebinding_risk(&addr.ip()))
                {
                    return Err(ConnectError::ReservedTarget(reserved.ip()));
                }
            }
            Ok(addrs)
        }
    }
}

impl Connector for DirectConnector {
    async fn connect(&self, target: &TargetAddr) -> Result<BoxStream, ConnectError> {
        self.connect_with_options(target, &ConnectOptions::default())
            .await
    }
}

#[cfg(test)]
mod tests {
    use super::*;
    use std::net::Ipv4Addr;
    use tokio::io::{AsyncReadExt, AsyncWriteExt};

    #[tokio::test]
    async fn test_direct_connect_echo() {
        let listener = tokio::net::TcpListener::bind("127.0.0.1:0").await.unwrap();
        let addr = listener.local_addr().unwrap();

        let jh = tokio::spawn(async move {
            let (mut stream, _) = listener.accept().await.unwrap();
            let mut buf = [0u8; 1024];
            let n = stream.read(&mut buf).await.unwrap();
            stream.write_all(&buf[..n]).await.unwrap();
        });

        let target = TargetAddr {
            host: TargetHost::Ip(addr.ip()),
            port: addr.port(),
        };

        let connector = DirectConnector;
        let mut stream = Connector::connect(&connector, &target).await.unwrap();

        stream.write_all(b"ping").await.unwrap();
        let mut buf = [0u8; 4];
        stream.read_exact(&mut buf).await.unwrap();
        assert_eq!(&buf, b"ping");

        jh.await.unwrap();
    }

    #[tokio::test]
    async fn direct_connect_metadata_reports_actual_socket_addresses() {
        let listener = tokio::net::TcpListener::bind("127.0.0.1:0").await.unwrap();
        let peer_addr = listener.local_addr().unwrap();
        let accept = tokio::spawn(async move { listener.accept().await.unwrap() });
        let target = TargetAddr {
            host: TargetHost::Ip(peer_addr.ip()),
            port: peer_addr.port(),
        };

        let (_stream, metadata) = DirectConnector
            .connect_with_options_and_metadata(&target, &ConnectOptions::default())
            .await
            .unwrap();
        let (server_stream, _) = accept.await.unwrap();
        let local_addr = metadata.local_addr().expect("local socket address");
        assert_eq!(metadata.peer_addr(), Some(peer_addr));
        assert!(local_addr.ip().is_loopback());
        assert_ne!(local_addr.port(), 0);
        drop(server_stream);
    }

    #[tokio::test]
    async fn direct_connect_metadata_uses_actual_local_bind_port() {
        let listener = tokio::net::TcpListener::bind("127.0.0.1:0").await.unwrap();
        let peer_addr = listener.local_addr().unwrap();
        let accept = tokio::spawn(async move { listener.accept().await.unwrap() });
        let target = TargetAddr {
            host: TargetHost::Ip(peer_addr.ip()),
            port: peer_addr.port(),
        };

        let (_, metadata) = DirectConnector
            .connect_with_options_and_metadata(
                &target,
                &ConnectOptions {
                    local_bind: Some("127.0.0.1:0".parse().unwrap()),
                    ..Default::default()
                },
            )
            .await
            .unwrap();
        let _ = accept.await.unwrap();
        let local_addr = metadata.local_addr().expect("local socket address");
        assert!(local_addr.ip().is_loopback());
        assert_ne!(local_addr.port(), 0);
    }

    #[tokio::test]
    async fn direct_connect_metadata_reports_ipv6_when_loopback_is_available() {
        let listener = match tokio::net::TcpListener::bind("[::1]:0").await {
            Ok(listener) => listener,
            Err(error) => {
                // Some supported hosts disable IPv6 loopback entirely.
                eprintln!("skipping IPv6 metadata check: loopback unavailable: {error}");
                return;
            }
        };
        let peer_addr = listener.local_addr().unwrap();
        let accept = tokio::spawn(async move { listener.accept().await.unwrap() });
        let target = TargetAddr {
            host: TargetHost::Ip(peer_addr.ip()),
            port: peer_addr.port(),
        };

        let (_, metadata) = DirectConnector
            .connect_with_options_and_metadata(&target, &ConnectOptions::default())
            .await
            .unwrap();
        let _ = accept.await.unwrap();
        assert_eq!(metadata.peer_addr(), Some(peer_addr));
        assert!(metadata.local_addr().unwrap().ip().is_loopback());
    }

    #[tokio::test]
    async fn dns_rebinding_policy_applies_consistently_to_domains() {
        let target = TargetAddr {
            host: TargetHost::Domain("localhost".to_string()),
            port: 80,
        };

        assert!(resolve_target(&target, false, false).await.is_ok());
        assert!(ConnectOptions::default().enforce_dns_rebinding_check);
        assert!(matches!(
            resolve_target(
                &target,
                ConnectOptions::default().enforce_dns_rebinding_check,
                ConnectOptions::default().enforce_literal_ip_check,
            )
            .await,
            Err(ConnectError::ReservedTarget(_))
        ));
    }

    #[test]
    fn reserved_ipv4_loopback() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            127, 0, 0, 1
        ))));
    }

    #[test]
    fn reserved_ipv4_private_10() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            10, 0, 0, 1
        ))));
    }

    #[test]
    fn reserved_ipv4_private_172() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            172, 16, 0, 1
        ))));
    }

    #[test]
    fn reserved_ipv4_private_192() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            192, 168, 1, 1
        ))));
    }

    #[test]
    fn reserved_ipv4_link_local() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            169, 254, 1, 1
        ))));
    }

    #[test]
    fn reserved_ipv4_unspecified() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(
            Ipv4Addr::UNSPECIFIED
        )));
    }

    #[test]
    fn not_reserved_ipv4_public() {
        assert!(!is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            8, 8, 8, 8
        ))));
    }

    #[test]
    fn reserved_ipv6_loopback() {
        assert!(is_reserved_or_private_ip(&IpAddr::V6(Ipv6Addr::LOCALHOST)));
    }

    #[test]
    fn reserved_ipv6_link_local() {
        let ip = "fe80::1".parse::<Ipv6Addr>().unwrap();
        assert!(is_reserved_or_private_ip(&IpAddr::V6(ip)));
    }

    #[test]
    fn reserved_ipv4_mapped_ipv6() {
        let ip = "::ffff:127.0.0.1".parse::<Ipv6Addr>().unwrap();
        assert!(is_reserved_or_private_ip(&IpAddr::V6(ip)));
    }

    #[test]
    fn reserved_ipv6_unique_local() {
        let ip = "fd00::1".parse::<Ipv6Addr>().unwrap();
        assert!(is_reserved_or_private_ip(&IpAddr::V6(ip)));
    }

    #[test]
    fn reserved_ipv6_unspecified() {
        assert!(is_reserved_or_private_ip(&IpAddr::V6(
            Ipv6Addr::UNSPECIFIED
        )));
    }

    #[test]
    fn not_reserved_ipv6_public() {
        let ip = "2606:4700:4700::1111".parse::<Ipv6Addr>().unwrap();
        assert!(!is_reserved_or_private_ip(&IpAddr::V6(ip)));
    }

    #[test]
    fn reserved_ipv4_multicast() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            224, 0, 0, 1
        ))));
    }

    #[test]
    fn reserved_ipv4_broadcast() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::BROADCAST)));
    }

    #[test]
    fn reserved_ipv4_documentation() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            192, 0, 2, 1
        ))));
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            198, 51, 100, 1
        ))));
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            203, 0, 113, 1
        ))));
    }

    #[test]
    fn reserved_ipv4_benchmarking() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            198, 18, 0, 1
        ))));
    }

    #[test]
    fn reserved_ipv4_reserved_future() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            240, 0, 0, 1
        ))));
    }

    #[test]
    fn reserved_ipv4_this_network() {
        assert!(is_reserved_or_private_ip(&IpAddr::V4(Ipv4Addr::new(
            0, 1, 2, 3
        ))));
    }

    #[test]
    fn reserved_ipv6_multicast() {
        let ip = "ff02::1".parse::<Ipv6Addr>().unwrap();
        assert!(is_reserved_or_private_ip(&IpAddr::V6(ip)));
    }

    #[test]
    fn reserved_ipv6_documentation() {
        let ip = "2001:db8::1".parse::<Ipv6Addr>().unwrap();
        assert!(is_reserved_or_private_ip(&IpAddr::V6(ip)));
    }

    #[test]
    fn reserved_ipv6_discard_prefix() {
        let ip = "0100::1".parse::<Ipv6Addr>().unwrap();
        assert!(is_reserved_or_private_ip(&IpAddr::V6(ip)));
    }

    #[tokio::test]
    async fn reject_domain_resolving_to_loopback() {
        let connector = DirectConnector;
        let target = TargetAddr {
            host: TargetHost::Domain("localhost".to_string()),
            port: 1,
        };
        let result = connector
            .connect_with_options(
                &target,
                &ConnectOptions {
                    enforce_dns_rebinding_check: true,
                    ..Default::default()
                },
            )
            .await;
        assert!(matches!(result, Err(ConnectError::ReservedTarget(_))));
    }

    #[tokio::test]
    async fn direct_connect_falls_back_to_next_resolved_address() {
        let listener = tokio::net::TcpListener::bind("127.0.0.1:0").await.unwrap();
        let good_addr = listener.local_addr().unwrap();
        let bad_addr = SocketAddr::new(good_addr.ip(), good_addr.port() + 1);

        let accept = tokio::spawn(async move { listener.accept().await.unwrap() });
        let stream = connect_to_addrs(&[bad_addr, good_addr], None)
            .await
            .expect("second resolved address should be attempted");
        drop(stream);
        accept.await.unwrap();
    }

    #[tokio::test]
    async fn mapped_ipv6_local_bind_uses_ipv4_socket() {
        let listener = tokio::net::TcpListener::bind("127.0.0.1:0").await.unwrap();
        let addr = listener.local_addr().unwrap();
        let accept = tokio::spawn(async move { listener.accept().await.unwrap() });

        let mapped = SocketAddr::new("::ffff:127.0.0.1".parse().unwrap(), 0);
        let stream = connect_to_addrs(&[addr], Some(mapped))
            .await
            .expect("mapped IPv6 local bind should connect to IPv4");
        drop(stream);
        accept.await.unwrap();
    }
}