270 lines
9.1 KiB
Rust
270 lines
9.1 KiB
Rust
//! UDP listener loop for the DHCP proxy. Accepts on :67 (and :4011 on a
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//! second socket) and dispatches each datagram through the pure reply logic.
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use crate::reply::{build_reply, decide, BootDirective, ReplyContext};
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use dhcproto::v4::{DhcpOption, Message, OptionCode};
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use dhcproto::{Decodable, Decoder, Encodable, Encoder};
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use openpxe_core::{ClientArch, ClientEvent, ClientRegistry, FirmwareClass};
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use socket2::{Domain, Protocol, Socket, Type};
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use std::net::{IpAddr, Ipv4Addr, SocketAddr, SocketAddrV4};
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use std::sync::Arc;
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use tokio::net::UdpSocket;
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pub struct DhcpProxyServer {
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bind: IpAddr,
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dhcp_port: u16,
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pxe_port: u16,
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our_ip: Ipv4Addr,
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public_base_url: String,
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clients: Arc<ClientRegistry>,
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metrics: openpxe_core::Metrics,
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}
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impl DhcpProxyServer {
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pub fn new(
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bind: IpAddr,
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dhcp_port: u16,
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pxe_port: u16,
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our_ip: Ipv4Addr,
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public_base_url: String,
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clients: Arc<ClientRegistry>,
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metrics: openpxe_core::Metrics,
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) -> Self {
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Self {
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bind,
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dhcp_port,
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pxe_port,
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our_ip,
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public_base_url,
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clients,
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metrics,
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}
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}
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pub async fn run(self) -> anyhow::Result<()> {
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let dhcp_sock = bind_udp(self.bind, self.dhcp_port, true)?;
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let pxe_sock = bind_udp(self.bind, self.pxe_port, false)?;
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tracing::info!(
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target: "openpxe::dhcp",
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"DHCP proxy listening on {}:{} and :{}",
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self.bind, self.dhcp_port, self.pxe_port
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);
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let ctx = Arc::new(self);
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let c1 = ctx.clone();
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let c2 = ctx.clone();
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let a = tokio::spawn(async move { c1.serve_loop(dhcp_sock, "67").await });
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let b = tokio::spawn(async move { c2.serve_loop(pxe_sock, "4011").await });
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let _ = tokio::try_join!(a, b)?;
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Ok(())
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}
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async fn serve_loop(&self, sock: UdpSocket, label: &'static str) -> anyhow::Result<()> {
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let mut buf = vec![0u8; 4096];
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loop {
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let (n, from) = match sock.recv_from(&mut buf).await {
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Ok(v) => v,
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Err(e) => {
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tracing::warn!(target: "openpxe::dhcp", port=label, "recv error: {e}");
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continue;
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}
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};
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if let Err(e) = self.handle_datagram(&sock, &buf[..n], from, label).await {
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tracing::warn!(target: "openpxe::dhcp", port=label, "handle error: {e}");
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}
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}
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}
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async fn handle_datagram(
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&self,
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sock: &UdpSocket,
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data: &[u8],
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from: SocketAddr,
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label: &'static str,
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) -> anyhow::Result<()> {
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let request = Message::decode(&mut Decoder::new(data))?;
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let vendor_class = request
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.opts()
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.get(OptionCode::ClassIdentifier)
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.and_then(|o| {
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if let DhcpOption::ClassIdentifier(v) = o {
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Some(v.as_slice())
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} else {
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None
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}
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});
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let user_class = request.opts().get(OptionCode::UserClass).and_then(|o| {
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if let DhcpOption::UserClass(v) = o {
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Some(v.as_slice())
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} else {
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None
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}
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});
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let class = FirmwareClass::classify(vendor_class, user_class);
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if matches!(class, FirmwareClass::Other) {
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// Not a PXE client (e.g. a regular DHCP DISCOVER from a phone).
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// Silently ignore — we are a proxy, we only speak to PXE clients.
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return Ok(());
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}
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// dhcproto types option 93 as an enum that drops unknown codes;
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// re-parse from the raw wire bytes so firmware quirks like 0x0009
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// come through intact.
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let raw_arch = extract_raw_arch(data).unwrap_or(0);
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let arch = ClientArch::from_option_93(raw_arch);
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let chaddr = request.chaddr();
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let mac = format_mac(chaddr);
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self.clients.record(
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&mac,
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None,
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Some(arch),
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match label {
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"4011" => ClientEvent::PxeBootServerRequest,
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_ => ClientEvent::DhcpDiscover,
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},
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);
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let ctx = ReplyContext {
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request: &request,
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our_ip: self.our_ip,
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arch,
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class,
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public_base_url: &self.public_base_url,
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};
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let directive = decide(&ctx);
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if matches!(directive, BootDirective::Ignore) {
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self.metrics.record_dhcp_decline();
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tracing::debug!(
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target: "openpxe::dhcp",
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mac=%mac, arch=?arch, "ignoring — no bootfile for arch"
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);
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return Ok(());
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}
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self.metrics.record_dhcp_reply(arch.as_str());
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let Some(reply) = build_reply(&ctx, &directive) else {
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return Ok(());
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};
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let mut out = Vec::with_capacity(512);
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reply.encode(&mut Encoder::new(&mut out))?;
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let dest = reply_destination(&request, from);
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sock.send_to(&out, dest).await?;
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tracing::info!(
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target: "openpxe::dhcp",
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mac=%mac, arch=arch.as_str(), class=?class, dest=%dest, directive=?directive,
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"PXE reply sent"
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);
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Ok(())
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}
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}
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/// Choose where to send the reply. DHCP semantics (RFC 2131 §4.1):
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/// 1. If the request came via a relay agent (`giaddr` != 0), reply to
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/// that agent on port 67. The relay will forward to the client.
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/// 2. If the client already has an IP (`ciaddr`), unicast there on :68.
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/// 3. If the broadcast flag is set in the BOOTP flags (bit 15), the
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/// client cannot receive unicast frames yet — we MUST broadcast.
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/// 4. Otherwise, per the spec we MAY unicast to `chaddr` if we ARP-inject,
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/// but since we don't craft raw frames (proxy mode, no NET_RAW), we
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/// fall back to broadcast which every client accepts.
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/// 5. Special case for the PXE Boot Server port 4011: reply to the
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/// source address/port exactly — this is a unicast query and the
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/// client expects a unicast answer there.
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fn reply_destination(request: &Message, from: SocketAddr) -> SocketAddr {
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// (1) relayed request
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let giaddr = request.giaddr();
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if giaddr != Ipv4Addr::UNSPECIFIED {
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return SocketAddr::V4(SocketAddrV4::new(giaddr, 67));
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}
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// (5) PXE Boot Server discovery is unicast
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if from.port() == 4011 {
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return from;
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}
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// (2) client has an IP and has NOT requested broadcast-only
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let ciaddr = request.ciaddr();
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let bflag = request.flags().broadcast();
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if ciaddr != Ipv4Addr::UNSPECIFIED && !bflag {
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return SocketAddr::V4(SocketAddrV4::new(ciaddr, 68));
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}
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// (3, 4) broadcast to 255.255.255.255:68
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SocketAddr::V4(SocketAddrV4::new(Ipv4Addr::BROADCAST, 68))
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}
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fn bind_udp(bind: IpAddr, port: u16, broadcast: bool) -> anyhow::Result<UdpSocket> {
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let domain = match bind {
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IpAddr::V4(_) => Domain::IPV4,
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IpAddr::V6(_) => Domain::IPV6,
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};
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let sock = Socket::new(domain, Type::DGRAM, Some(Protocol::UDP))?;
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sock.set_reuse_address(true)?;
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#[cfg(unix)]
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sock.set_reuse_port(true)?;
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if broadcast {
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sock.set_broadcast(true)?;
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}
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sock.set_nonblocking(true)?;
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let addr: SocketAddr = SocketAddr::new(bind, port);
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sock.bind(&addr.into())?;
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let std_sock: std::net::UdpSocket = sock.into();
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Ok(UdpSocket::from_std(std_sock)?)
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}
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fn format_mac(chaddr: &[u8]) -> String {
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let take = chaddr.iter().take(6).copied().collect::<Vec<_>>();
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take.iter()
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.map(|b| format!("{b:02x}"))
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.collect::<Vec<_>>()
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.join(":")
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}
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/// Walk raw DHCP options looking for option 93 (Client System Architecture)
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/// and return the first 2-byte big-endian value. This bypasses dhcproto's
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/// typed decoding because some firmwares emit values outside the IANA table
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/// that the typed decoder may drop.
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fn extract_raw_arch(packet: &[u8]) -> Option<u16> {
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// DHCPv4 fixed header is 240 bytes including the 4-byte magic cookie.
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// Options start at offset 240.
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let opts = packet.get(240..)?;
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let mut i = 0;
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while i < opts.len() {
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let code = opts[i];
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if code == 0xff {
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return None;
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} // END
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if code == 0x00 {
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i += 1;
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continue;
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} // PAD
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i += 1;
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if i >= opts.len() {
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return None;
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}
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let len = opts[i] as usize;
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i += 1;
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if code == 93 && len >= 2 && i + 2 <= opts.len() {
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return Some(u16::from_be_bytes([opts[i], opts[i + 1]]));
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}
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i += len;
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}
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None
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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#[test]
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fn extracts_arch_from_raw_options() {
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// Minimal BOOTP header + magic cookie + option 93 (arch)=0x0007 + END.
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let mut pkt = vec![0u8; 240];
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pkt[236..240].copy_from_slice(&[99, 130, 83, 99]); // magic cookie
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pkt.extend_from_slice(&[53, 1, 1]); // option 53 DHCPDISCOVER
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pkt.extend_from_slice(&[93, 2, 0x00, 0x07]);
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pkt.push(0xff);
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assert_eq!(extract_raw_arch(&pkt), Some(0x0007));
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}
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}
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