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459 lines
13 KiB
Rust
459 lines
13 KiB
Rust
#[cfg(all(test, not(target_os = "emscripten")))]
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mod tests;
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use crate::os::unix::prelude::*;
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use crate::collections::BTreeMap;
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use crate::ffi::{CStr, CString, OsStr, OsString};
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use crate::fmt;
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use crate::io;
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use crate::path::Path;
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use crate::ptr;
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use crate::sys::fd::FileDesc;
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use crate::sys::fs::File;
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use crate::sys::pipe::{self, AnonPipe};
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use crate::sys_common::process::{CommandEnv, CommandEnvs};
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#[cfg(not(target_os = "fuchsia"))]
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use crate::sys::fs::OpenOptions;
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use libc::{c_char, c_int, gid_t, uid_t, EXIT_FAILURE, EXIT_SUCCESS};
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cfg_if::cfg_if! {
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if #[cfg(target_os = "fuchsia")] {
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// fuchsia doesn't have /dev/null
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} else if #[cfg(target_os = "redox")] {
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const DEV_NULL: &str = "null:\0";
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} else if #[cfg(target_os = "vxworks")] {
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const DEV_NULL: &str = "/null\0";
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} else {
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const DEV_NULL: &str = "/dev/null\0";
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}
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}
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// Android with api less than 21 define sig* functions inline, so it is not
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// available for dynamic link. Implementing sigemptyset and sigaddset allow us
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// to support older Android version (independent of libc version).
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// The following implementations are based on https://git.io/vSkNf
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cfg_if::cfg_if! {
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if #[cfg(target_os = "android")] {
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pub unsafe fn sigemptyset(set: *mut libc::sigset_t) -> libc::c_int {
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set.write_bytes(0u8, 1);
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return 0;
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}
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#[allow(dead_code)]
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pub unsafe fn sigaddset(set: *mut libc::sigset_t, signum: libc::c_int) -> libc::c_int {
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use crate::{slice, mem};
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let raw = slice::from_raw_parts_mut(set as *mut u8, mem::size_of::<libc::sigset_t>());
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let bit = (signum - 1) as usize;
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raw[bit / 8] |= 1 << (bit % 8);
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return 0;
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}
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} else if #[cfg(not(target_os = "vxworks"))] {
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pub use libc::{sigemptyset, sigaddset};
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}
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}
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////////////////////////////////////////////////////////////////////////////////
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// Command
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////////////////////////////////////////////////////////////////////////////////
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pub struct Command {
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program: CString,
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args: Vec<CString>,
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/// Exactly what will be passed to `execvp`.
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///
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/// First element is a pointer to `program`, followed by pointers to
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/// `args`, followed by a `null`. Be careful when modifying `program` or
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/// `args` to properly update this as well.
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argv: Argv,
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env: CommandEnv,
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cwd: Option<CString>,
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uid: Option<uid_t>,
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gid: Option<gid_t>,
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saw_nul: bool,
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closures: Vec<Box<dyn FnMut() -> io::Result<()> + Send + Sync>>,
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groups: Option<Box<[gid_t]>>,
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stdin: Option<Stdio>,
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stdout: Option<Stdio>,
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stderr: Option<Stdio>,
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}
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// Create a new type for argv, so that we can make it `Send` and `Sync`
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struct Argv(Vec<*const c_char>);
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// It is safe to make `Argv` `Send` and `Sync`, because it contains
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// pointers to memory owned by `Command.args`
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unsafe impl Send for Argv {}
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unsafe impl Sync for Argv {}
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// passed back to std::process with the pipes connected to the child, if any
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// were requested
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pub struct StdioPipes {
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pub stdin: Option<AnonPipe>,
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pub stdout: Option<AnonPipe>,
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pub stderr: Option<AnonPipe>,
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}
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// passed to do_exec() with configuration of what the child stdio should look
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// like
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pub struct ChildPipes {
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pub stdin: ChildStdio,
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pub stdout: ChildStdio,
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pub stderr: ChildStdio,
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}
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pub enum ChildStdio {
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Inherit,
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Explicit(c_int),
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Owned(FileDesc),
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// On Fuchsia, null stdio is the default, so we simply don't specify
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// any actions at the time of spawning.
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#[cfg(target_os = "fuchsia")]
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Null,
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}
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pub enum Stdio {
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Inherit,
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Null,
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MakePipe,
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Fd(FileDesc),
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}
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impl Command {
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pub fn new(program: &OsStr) -> Command {
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let mut saw_nul = false;
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let program = os2c(program, &mut saw_nul);
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Command {
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argv: Argv(vec![program.as_ptr(), ptr::null()]),
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args: vec![program.clone()],
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program,
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env: Default::default(),
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cwd: None,
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uid: None,
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gid: None,
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saw_nul,
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closures: Vec::new(),
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groups: None,
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stdin: None,
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stdout: None,
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stderr: None,
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}
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}
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pub fn set_arg_0(&mut self, arg: &OsStr) {
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// Set a new arg0
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let arg = os2c(arg, &mut self.saw_nul);
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debug_assert!(self.argv.0.len() > 1);
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self.argv.0[0] = arg.as_ptr();
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self.args[0] = arg;
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}
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pub fn arg(&mut self, arg: &OsStr) {
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// Overwrite the trailing NULL pointer in `argv` and then add a new null
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// pointer.
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let arg = os2c(arg, &mut self.saw_nul);
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self.argv.0[self.args.len()] = arg.as_ptr();
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self.argv.0.push(ptr::null());
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// Also make sure we keep track of the owned value to schedule a
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// destructor for this memory.
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self.args.push(arg);
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}
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pub fn cwd(&mut self, dir: &OsStr) {
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self.cwd = Some(os2c(dir, &mut self.saw_nul));
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}
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pub fn uid(&mut self, id: uid_t) {
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self.uid = Some(id);
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}
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pub fn gid(&mut self, id: gid_t) {
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self.gid = Some(id);
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}
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pub fn groups(&mut self, groups: &[gid_t]) {
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self.groups = Some(Box::from(groups));
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}
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pub fn saw_nul(&self) -> bool {
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self.saw_nul
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}
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pub fn get_program(&self) -> &OsStr {
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OsStr::from_bytes(self.program.as_bytes())
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}
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pub fn get_args(&self) -> CommandArgs<'_> {
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let mut iter = self.args.iter();
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iter.next();
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CommandArgs { iter }
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}
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pub fn get_envs(&self) -> CommandEnvs<'_> {
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self.env.iter()
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}
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pub fn get_current_dir(&self) -> Option<&Path> {
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self.cwd.as_ref().map(|cs| Path::new(OsStr::from_bytes(cs.as_bytes())))
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}
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pub fn get_argv(&self) -> &Vec<*const c_char> {
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&self.argv.0
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}
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pub fn get_program_cstr(&self) -> &CStr {
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&*self.program
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}
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#[allow(dead_code)]
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pub fn get_cwd(&self) -> &Option<CString> {
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&self.cwd
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}
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#[allow(dead_code)]
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pub fn get_uid(&self) -> Option<uid_t> {
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self.uid
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}
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#[allow(dead_code)]
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pub fn get_gid(&self) -> Option<gid_t> {
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self.gid
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}
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#[allow(dead_code)]
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pub fn get_groups(&self) -> Option<&[gid_t]> {
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self.groups.as_deref()
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}
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pub fn get_closures(&mut self) -> &mut Vec<Box<dyn FnMut() -> io::Result<()> + Send + Sync>> {
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&mut self.closures
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}
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pub unsafe fn pre_exec(&mut self, f: Box<dyn FnMut() -> io::Result<()> + Send + Sync>) {
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self.closures.push(f);
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}
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pub fn stdin(&mut self, stdin: Stdio) {
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self.stdin = Some(stdin);
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}
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pub fn stdout(&mut self, stdout: Stdio) {
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self.stdout = Some(stdout);
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}
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pub fn stderr(&mut self, stderr: Stdio) {
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self.stderr = Some(stderr);
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}
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pub fn env_mut(&mut self) -> &mut CommandEnv {
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&mut self.env
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}
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pub fn capture_env(&mut self) -> Option<CStringArray> {
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let maybe_env = self.env.capture_if_changed();
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maybe_env.map(|env| construct_envp(env, &mut self.saw_nul))
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}
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#[allow(dead_code)]
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pub fn env_saw_path(&self) -> bool {
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self.env.have_changed_path()
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}
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#[allow(dead_code)]
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pub fn program_is_path(&self) -> bool {
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self.program.to_bytes().contains(&b'/')
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}
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pub fn setup_io(
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&self,
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default: Stdio,
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needs_stdin: bool,
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) -> io::Result<(StdioPipes, ChildPipes)> {
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let null = Stdio::Null;
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let default_stdin = if needs_stdin { &default } else { &null };
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let stdin = self.stdin.as_ref().unwrap_or(default_stdin);
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let stdout = self.stdout.as_ref().unwrap_or(&default);
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let stderr = self.stderr.as_ref().unwrap_or(&default);
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let (their_stdin, our_stdin) = stdin.to_child_stdio(true)?;
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let (their_stdout, our_stdout) = stdout.to_child_stdio(false)?;
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let (their_stderr, our_stderr) = stderr.to_child_stdio(false)?;
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let ours = StdioPipes { stdin: our_stdin, stdout: our_stdout, stderr: our_stderr };
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let theirs = ChildPipes { stdin: their_stdin, stdout: their_stdout, stderr: their_stderr };
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Ok((ours, theirs))
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}
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}
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fn os2c(s: &OsStr, saw_nul: &mut bool) -> CString {
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CString::new(s.as_bytes()).unwrap_or_else(|_e| {
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*saw_nul = true;
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CString::new("<string-with-nul>").unwrap()
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})
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}
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// Helper type to manage ownership of the strings within a C-style array.
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pub struct CStringArray {
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items: Vec<CString>,
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ptrs: Vec<*const c_char>,
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}
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impl CStringArray {
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pub fn with_capacity(capacity: usize) -> Self {
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let mut result = CStringArray {
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items: Vec::with_capacity(capacity),
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ptrs: Vec::with_capacity(capacity + 1),
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};
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result.ptrs.push(ptr::null());
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result
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}
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pub fn push(&mut self, item: CString) {
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let l = self.ptrs.len();
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self.ptrs[l - 1] = item.as_ptr();
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self.ptrs.push(ptr::null());
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self.items.push(item);
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}
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pub fn as_ptr(&self) -> *const *const c_char {
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self.ptrs.as_ptr()
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}
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}
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fn construct_envp(env: BTreeMap<OsString, OsString>, saw_nul: &mut bool) -> CStringArray {
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let mut result = CStringArray::with_capacity(env.len());
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for (mut k, v) in env {
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// Reserve additional space for '=' and null terminator
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k.reserve_exact(v.len() + 2);
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k.push("=");
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k.push(&v);
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// Add the new entry into the array
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if let Ok(item) = CString::new(k.into_vec()) {
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result.push(item);
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} else {
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*saw_nul = true;
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}
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}
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result
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}
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impl Stdio {
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pub fn to_child_stdio(&self, readable: bool) -> io::Result<(ChildStdio, Option<AnonPipe>)> {
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match *self {
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Stdio::Inherit => Ok((ChildStdio::Inherit, None)),
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// Make sure that the source descriptors are not an stdio
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// descriptor, otherwise the order which we set the child's
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// descriptors may blow away a descriptor which we are hoping to
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// save. For example, suppose we want the child's stderr to be the
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// parent's stdout, and the child's stdout to be the parent's
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// stderr. No matter which we dup first, the second will get
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// overwritten prematurely.
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Stdio::Fd(ref fd) => {
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if fd.raw() >= 0 && fd.raw() <= libc::STDERR_FILENO {
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Ok((ChildStdio::Owned(fd.duplicate()?), None))
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} else {
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Ok((ChildStdio::Explicit(fd.raw()), None))
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}
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}
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Stdio::MakePipe => {
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let (reader, writer) = pipe::anon_pipe()?;
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let (ours, theirs) = if readable { (writer, reader) } else { (reader, writer) };
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Ok((ChildStdio::Owned(theirs.into_fd()), Some(ours)))
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}
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#[cfg(not(target_os = "fuchsia"))]
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Stdio::Null => {
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let mut opts = OpenOptions::new();
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opts.read(readable);
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opts.write(!readable);
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let path = unsafe { CStr::from_ptr(DEV_NULL.as_ptr() as *const _) };
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let fd = File::open_c(&path, &opts)?;
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Ok((ChildStdio::Owned(fd.into_fd()), None))
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}
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#[cfg(target_os = "fuchsia")]
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Stdio::Null => Ok((ChildStdio::Null, None)),
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}
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}
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}
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impl From<AnonPipe> for Stdio {
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fn from(pipe: AnonPipe) -> Stdio {
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Stdio::Fd(pipe.into_fd())
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}
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}
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impl From<File> for Stdio {
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fn from(file: File) -> Stdio {
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Stdio::Fd(file.into_fd())
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}
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}
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impl ChildStdio {
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pub fn fd(&self) -> Option<c_int> {
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match *self {
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ChildStdio::Inherit => None,
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ChildStdio::Explicit(fd) => Some(fd),
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ChildStdio::Owned(ref fd) => Some(fd.raw()),
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#[cfg(target_os = "fuchsia")]
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ChildStdio::Null => None,
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}
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}
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}
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impl fmt::Debug for Command {
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fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
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if self.program != self.args[0] {
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write!(f, "[{:?}] ", self.program)?;
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}
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write!(f, "{:?}", self.args[0])?;
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for arg in &self.args[1..] {
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write!(f, " {:?}", arg)?;
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}
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Ok(())
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}
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}
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#[derive(PartialEq, Eq, Clone, Copy, Debug)]
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pub struct ExitCode(u8);
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impl ExitCode {
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pub const SUCCESS: ExitCode = ExitCode(EXIT_SUCCESS as _);
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pub const FAILURE: ExitCode = ExitCode(EXIT_FAILURE as _);
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#[inline]
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pub fn as_i32(&self) -> i32 {
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self.0 as i32
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}
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}
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pub struct CommandArgs<'a> {
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iter: crate::slice::Iter<'a, CString>,
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}
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impl<'a> Iterator for CommandArgs<'a> {
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type Item = &'a OsStr;
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fn next(&mut self) -> Option<&'a OsStr> {
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self.iter.next().map(|cs| OsStr::from_bytes(cs.as_bytes()))
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}
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fn size_hint(&self) -> (usize, Option<usize>) {
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self.iter.size_hint()
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}
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}
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impl<'a> ExactSizeIterator for CommandArgs<'a> {
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fn len(&self) -> usize {
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self.iter.len()
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}
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fn is_empty(&self) -> bool {
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self.iter.is_empty()
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}
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}
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impl<'a> fmt::Debug for CommandArgs<'a> {
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fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
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f.debug_list().entries(self.iter.clone()).finish()
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}
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}
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