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gatuna/gatunad/src/link.rs
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//! Raw Ethernet I/O over `AF_PACKET` with a classic BPF filter on ethertype
//! `0x6969`. No eBPF authoring: the filter is a hand-assembled cBPF program
//! installed via `SO_ATTACH_FILTER`. The kernel may translate it to eBPF
//! internally at attach time; that is transparent and not our concern.
use std::io::{self, ErrorKind};
use std::os::unix::io::{AsRawFd, RawFd};
use tokio::io::unix::{AsyncFd, AsyncFdReadyGuard};
use crate::frame::{ETHERTYPE, ETH_HEADER_LEN};
#[derive(Clone, Copy, Debug, PartialEq, Eq)]
pub struct MacAddr(pub [u8; 6]);
impl MacAddr {
#[allow(dead_code)]
pub fn broadcast() -> Self {
MacAddr([0xff; 6])
}
}
struct LinkFd(RawFd);
impl AsRawFd for LinkFd {
fn as_raw_fd(&self) -> RawFd {
self.0
}
}
impl Drop for LinkFd {
fn drop(&mut self) {
unsafe {
libc::close(self.0);
}
}
}
pub struct Link {
fd: AsyncFd<LinkFd>,
ifindex: libc::c_int,
pub our_mac: MacAddr,
}
// cBPF program for `ether proto 0x6969`:
// 0: ldh [12] load ethertype (host-order u16)
// 1: jeq #host(ETHERTYPE), 1, 0 match -> skip to accept; else fall to drop
// 2: ret #0 drop
// 3: ret #0xFFFF accept (return whole packet)
//
// The ethertype is carried big-endian on the wire; `ldh` loads it in host
// byte order, so the comparison constant must be `u16::from_be(ETHERTYPE)`.
fn bpf_program() -> [libc::sock_filter; 4] {
const BPF_LD_H_ABS: u16 = 0x28;
const BPF_JMP_JEQ_K: u16 = 0x15;
const BPF_RET_K: u16 = 0x06;
let k = u16::from_be(ETHERTYPE) as u32;
[
libc::sock_filter { code: BPF_LD_H_ABS, jt: 0, jf: 0, k: 12 },
libc::sock_filter { code: BPF_JMP_JEQ_K, jt: 1, jf: 0, k },
libc::sock_filter { code: BPF_RET_K, jt: 0, jf: 0, k: 0 },
libc::sock_filter { code: BPF_RET_K, jt: 0, jf: 0, k: 0xFFFF },
]
}
fn htons(v: u16) -> u16 {
v.to_be()
}
fn lookup_mac(iface: &str) -> io::Result<MacAddr> {
for ni in pnet_datalink::interfaces() {
if ni.name == iface {
if let Some(mac) = ni.mac {
return Ok(MacAddr(mac.0));
}
}
}
Err(io::Error::new(
ErrorKind::NotFound,
format!("could not determine MAC for interface {iface}"),
))
}
impl Link {
pub fn open(iface: &str) -> io::Result<Link> {
unsafe {
let fd = libc::socket(libc::AF_PACKET, libc::SOCK_RAW, htons(libc::ETH_P_ALL as u16));
if fd < 0 {
return Err(io::last_os_error());
}
// Non-blocking for AsyncFd.
let flags = libc::fcntl(fd, libc::F_GETFL);
if flags < 0 {
let e = io::last_os_error();
libc::close(fd);
return Err(e);
}
if libc::fcntl(fd, libc::F_SETFL, flags | libc::O_NONBLOCK) < 0 {
let e = io::last_os_error();
libc::close(fd);
return Err(e);
}
let ciface = match std::ffi::CString::new(iface) {
Ok(s) => s,
Err(_) => {
libc::close(fd);
return Err(io::Error::new(
ErrorKind::InvalidInput,
"interface name contains an interior NUL",
));
}
};
let ifindex = libc::if_nametoindex(ciface.as_ptr());
if ifindex == 0 {
let e = io::last_os_error();
libc::close(fd);
return Err(e);
}
// Bind to the interface so we only receive frames on it.
let mut sll: libc::sockaddr_ll = std::mem::zeroed();
sll.sll_family = libc::AF_PACKET as u16;
sll.sll_protocol = htons(libc::ETH_P_ALL as u16);
sll.sll_ifindex = ifindex as libc::c_int;
let r = libc::bind(
fd,
&sll as *const _ as *const libc::sockaddr,
std::mem::size_of::<libc::sockaddr_ll>() as libc::socklen_t,
);
if r < 0 {
let e = io::last_os_error();
libc::close(fd);
return Err(e);
}
// Classic BPF: only our ethertype reaches userspace.
let filt = bpf_program();
let prog = libc::sock_fprog {
len: filt.len() as u16,
filter: filt.as_ptr() as *mut libc::sock_filter,
};
let r = libc::setsockopt(
fd,
libc::SOL_SOCKET,
libc::SO_ATTACH_FILTER,
&prog as *const _ as *const libc::c_void,
std::mem::size_of::<libc::sock_fprog>() as libc::socklen_t,
);
if r < 0 {
let e = io::last_os_error();
libc::close(fd);
return Err(e);
}
let our_mac = lookup_mac(iface)?;
let async_fd = AsyncFd::new(LinkFd(fd))?;
Ok(Link {
fd: async_fd,
ifindex: ifindex as libc::c_int,
our_mac,
})
}
}
pub async fn readable(&self) -> io::Result<AsyncFdReadyGuard<'_, LinkFd>> {
self.fd.readable().await
}
pub async fn writable(&self) -> io::Result<AsyncFdReadyGuard<'_, LinkFd>> {
self.fd.writable().await
}
/// Receive one frame. Returns:
/// - `Ok(Some((src, payload)))` for a frame we should process.
/// - `Ok(None)` for an ignorable frame (our own outgoing frame, short
/// frame, ethertype mismatch) — the caller should keep draining without
/// clearing readiness.
/// - `Err(WouldBlock)` when no more frames are available — the caller
/// should clear readiness and await again.
pub fn recv<'a>(&self, buf: &'a mut [u8]) -> io::Result<Option<(MacAddr, &'a [u8])>> {
let mut sll: libc::sockaddr_ll = unsafe { std::mem::zeroed() };
let mut slen = std::mem::size_of::<libc::sockaddr_ll>() as libc::socklen_t;
let n = unsafe {
libc::recvfrom(
self.fd.as_raw_fd(),
buf.as_mut_ptr() as *mut libc::c_void,
buf.len(),
0,
&mut sll as *mut _ as *mut libc::sockaddr,
&mut slen,
)
};
if n < 0 {
return Err(io::last_os_error());
}
// Skip frames we transmitted (AF_PACKET with ETH_P_ALL loops them back).
if sll.sll_pkttype == libc::PACKET_OUTGOING {
return Ok(None);
}
let pkt = &buf[..n as usize];
if pkt.len() < ETH_HEADER_LEN {
return Ok(None);
}
let src = MacAddr([pkt[6], pkt[7], pkt[8], pkt[9], pkt[10], pkt[11]]);
// BPF already filtered; double-check for safety against the ethertype.
let et = u16::from_be_bytes([pkt[12], pkt[13]]);
if et != ETHERTYPE {
return Ok(None);
}
Ok(Some((src, &pkt[ETH_HEADER_LEN..])))
}
/// Send `payload` (our protocol frame) wrapped in an Ethernet header to
/// `dst`. The ethertype is `0x6969`. Returns `WouldBlock` if the kernel
/// buffer is full; the caller is expected to await writability and retry.
pub fn send(&self, dst: MacAddr, payload: &[u8]) -> io::Result<()> {
let mut frame = Vec::with_capacity(ETH_HEADER_LEN + payload.len());
frame.extend_from_slice(&dst.0);
frame.extend_from_slice(&self.our_mac.0);
frame.extend_from_slice(&ETHERTYPE.to_be_bytes());
frame.extend_from_slice(payload);
let mut sll: libc::sockaddr_ll = unsafe { std::mem::zeroed() };
sll.sll_family = libc::AF_PACKET as u16;
sll.sll_protocol = htons(libc::ETH_P_ALL as u16);
sll.sll_ifindex = self.ifindex;
sll.sll_hatype = 1; // ARPHRD_ETHER
sll.sll_halen = 6;
sll.sll_addr[..6].copy_from_slice(&dst.0);
let r = unsafe {
libc::sendto(
self.fd.as_raw_fd(),
frame.as_ptr() as *const libc::c_void,
frame.len(),
0,
&sll as *const _ as *const libc::sockaddr,
std::mem::size_of::<libc::sockaddr_ll>() as libc::socklen_t,
)
};
if r < 0 {
return Err(io::last_os_error());
}
Ok(())
}
}