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use libc::{c_int, pid_t, uid_t};
use {Error, Result};
use unistd;
use errno::Errno;
use sys::signal::signal::siginfo as signal_siginfo;
pub use sys::signal::{self, SigSet};
use std::os::unix::io::{RawFd, AsRawFd};
use std::mem;
mod ffi {
use libc::c_int;
use sys::signal::sigset_t;
extern {
pub fn signalfd(fd: c_int, mask: *const sigset_t, flags: c_int) -> c_int;
}
}
bitflags!{
flags SfdFlags: c_int {
const SFD_NONBLOCK = 0o00004000,
const SFD_CLOEXEC = 0o02000000,
}
}
pub const CREATE_NEW_FD: RawFd = -1;
pub fn signalfd(fd: RawFd, mask: &SigSet, flags: SfdFlags) -> Result<RawFd> {
unsafe {
match ffi::signalfd(fd as c_int, mask.as_ref(), flags.bits()) {
-1 => Err(Error::Sys(Errno::last())),
res => Ok(res as RawFd),
}
}
}
#[derive(Debug)]
pub struct SignalFd(RawFd);
impl SignalFd {
pub fn new(mask: &SigSet) -> Result<SignalFd> {
Self::with_flags(mask, SfdFlags::empty())
}
pub fn with_flags(mask: &SigSet, flags: SfdFlags) -> Result<SignalFd> {
let fd = try!(signalfd(CREATE_NEW_FD, mask, flags));
Ok(SignalFd(fd))
}
pub fn set_mask(&mut self, mask: &SigSet) -> Result<()> {
signalfd(self.0, mask, SfdFlags::empty()).map(|_| ())
}
pub fn read_signal(&mut self) -> Result<Option<siginfo>> {
let mut buffer: [u8; SIGINFO_SIZE] = unsafe { mem::uninitialized() };
match unistd::read(self.0, &mut buffer) {
Ok(SIGINFO_SIZE) => Ok(Some(unsafe { mem::transmute_copy(&buffer) })),
Ok(_) => unreachable!("partial read on signalfd"),
Err(Error::Sys(Errno::EAGAIN)) => Ok(None),
Err(error) => Err(error)
}
}
}
impl Drop for SignalFd {
fn drop(&mut self) {
let _ = unistd::close(self.0);
}
}
impl AsRawFd for SignalFd {
fn as_raw_fd(&self) -> RawFd {
self.0
}
}
impl Iterator for SignalFd {
type Item = siginfo;
fn next(&mut self) -> Option<Self::Item> {
match self.read_signal() {
Ok(Some(sig)) => Some(sig),
Ok(None) => None,
Err(..) => None,
}
}
}
pub const SIGINFO_SIZE: usize = 128;
pub const SIGINFO_PADDING: usize = 48;
#[derive(Debug, Clone, PartialEq)]
#[repr(C, packed)]
pub struct siginfo {
pub ssi_signo: u32,
pub ssi_errno: i32,
pub ssi_code: i32,
pub ssi_pid: u32,
pub ssi_uid: u32,
pub ssi_fd: i32,
pub ssi_tid: u32,
pub ssi_band: u32,
pub ssi_overrun: u32,
pub ssi_trapno: u32,
pub ssi_status: i32,
pub ssi_int: i32,
pub ssi_ptr: u64,
pub ssi_utime: u64,
pub ssi_stime: u64,
pub ssi_addr: u64,
}
impl Into<signal_siginfo> for siginfo {
fn into(self) -> signal_siginfo {
signal_siginfo {
si_signo: self.ssi_signo as c_int,
si_errno: self.ssi_errno as c_int,
si_code: self.ssi_code as c_int,
pid: self.ssi_pid as pid_t,
uid: self.ssi_uid as uid_t,
status: self.ssi_status as c_int,
}
}
}
#[cfg(test)]
mod tests {
use super::*;
use std::mem;
#[test]
fn check_siginfo_size() {
assert_eq!(mem::size_of::<siginfo>() + SIGINFO_PADDING, SIGINFO_SIZE);
}
#[test]
fn create_signalfd() {
let mask = SigSet::empty();
let fd = SignalFd::new(&mask);
assert!(fd.is_ok());
}
#[test]
fn create_signalfd_with_opts() {
let mask = SigSet::empty();
let fd = SignalFd::with_flags(&mask, SFD_CLOEXEC | SFD_NONBLOCK);
assert!(fd.is_ok());
}
#[test]
fn read_empty_signalfd() {
let mask = SigSet::empty();
let mut fd = SignalFd::with_flags(&mask, SFD_NONBLOCK).unwrap();
let res = fd.read_signal();
assert_eq!(res, Ok(None));
}
}