2019-02-22 10:10:24 +04:00
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//! Syscalls for process
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use super::*;
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2019-03-23 11:47:44 +04:00
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use crate::fs::{INodeExt, FOLLOW_MAX_DEPTH};
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2019-02-22 10:10:24 +04:00
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/// Fork the current process. Return the child's PID.
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pub fn sys_fork(tf: &TrapFrame) -> SysResult {
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2019-03-08 18:37:05 +04:00
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let new_thread = current_thread().fork(tf);
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2019-03-10 11:23:15 +04:00
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let pid = processor().manager().add(new_thread);
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2019-02-22 10:10:24 +04:00
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info!("fork: {} -> {}", thread::current().id(), pid);
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2019-03-08 15:04:39 +04:00
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Ok(pid)
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2019-02-22 10:10:24 +04:00
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}
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2019-03-08 18:37:05 +04:00
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/// Create a new thread in the current process.
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2019-03-09 11:55:00 +04:00
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/// The new thread's stack pointer will be set to `newsp`,
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/// and thread pointer will be set to `newtls`.
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2019-03-08 18:37:05 +04:00
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/// The child tid will be stored at both `parent_tid` and `child_tid`.
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/// This is partially implemented for musl only.
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2019-03-09 08:54:26 +04:00
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pub fn sys_clone(flags: usize, newsp: usize, parent_tid: *mut u32, child_tid: *mut u32, newtls: usize, tf: &TrapFrame) -> SysResult {
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2019-03-08 20:47:02 +04:00
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info!("clone: flags: {:#x}, newsp: {:#x}, parent_tid: {:?}, child_tid: {:?}, newtls: {:#x}",
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flags, newsp, parent_tid, child_tid, newtls);
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2019-03-15 19:55:01 +04:00
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if flags == 0x4111 {
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warn!("sys_clone is calling sys_fork instead, ignoring other args");
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return sys_fork(tf);
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}
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2019-03-08 18:37:05 +04:00
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if flags != 0x7d0f00 {
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warn!("sys_clone only support musl pthread_create");
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return Err(SysError::ENOSYS);
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}
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{
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2019-03-09 11:55:00 +04:00
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let proc = process();
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2019-03-22 19:45:57 +04:00
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proc.vm.check_write_ptr(parent_tid)?;
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proc.vm.check_write_ptr(child_tid)?;
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2019-03-08 18:37:05 +04:00
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}
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2019-03-09 08:54:26 +04:00
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let new_thread = current_thread().clone(tf, newsp, newtls, child_tid as usize);
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2019-03-08 18:37:05 +04:00
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// FIXME: parent pid
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2019-03-10 11:23:15 +04:00
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let tid = processor().manager().add(new_thread);
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2019-03-08 18:37:05 +04:00
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info!("clone: {} -> {}", thread::current().id(), tid);
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unsafe {
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2019-03-09 08:54:26 +04:00
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parent_tid.write(tid as u32);
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child_tid.write(tid as u32);
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2019-03-08 18:37:05 +04:00
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}
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Ok(tid)
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}
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2019-03-10 21:06:44 +04:00
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/// Wait for the process exit.
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/// Return the PID. Store exit code to `wstatus` if it's not null.
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2019-03-08 15:04:39 +04:00
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pub fn sys_wait4(pid: isize, wstatus: *mut i32) -> SysResult {
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info!("wait4: pid: {}, code: {:?}", pid, wstatus);
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if !wstatus.is_null() {
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2019-03-22 19:45:57 +04:00
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process().vm.check_write_ptr(wstatus)?;
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2019-03-07 19:32:47 +04:00
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}
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2019-03-08 11:54:03 +04:00
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#[derive(Debug)]
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enum WaitFor {
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AnyChild,
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Pid(usize),
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}
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let target = match pid {
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2019-03-22 19:45:57 +04:00
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-1 | 0 => WaitFor::AnyChild,
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2019-03-08 11:54:03 +04:00
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p if p > 0 => WaitFor::Pid(p as usize),
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_ => unimplemented!(),
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};
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2019-02-22 10:10:24 +04:00
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loop {
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2019-03-10 21:06:44 +04:00
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let mut proc = process();
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// check child_exit_code
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let find = match target {
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WaitFor::AnyChild => proc.child_exit_code
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.iter().next().map(|(&pid, &code)| (pid, code)),
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WaitFor::Pid(pid) => proc.child_exit_code
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.get(&pid).map(|&code| (pid, code)),
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2019-02-22 10:10:24 +04:00
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};
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2019-03-10 21:06:44 +04:00
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// if found, return
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if let Some((pid, exit_code)) = find {
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proc.child_exit_code.remove(&pid);
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if !wstatus.is_null() {
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unsafe { wstatus.write(exit_code as i32); }
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2019-02-22 10:10:24 +04:00
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}
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2019-03-10 21:06:44 +04:00
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return Ok(pid);
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2019-02-22 10:10:24 +04:00
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}
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2019-03-10 21:06:44 +04:00
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// if not, check pid
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let children: Vec<_> = proc.children.iter()
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.filter_map(|weak| weak.upgrade())
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.collect();
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let invalid = match target {
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WaitFor::AnyChild => children.len() == 0,
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WaitFor::Pid(pid) => children.iter().find(|p| p.lock().pid.get() == pid).is_none(),
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};
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if invalid {
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return Err(SysError::ECHILD);
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2019-02-22 10:10:24 +04:00
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}
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2019-03-10 21:06:44 +04:00
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info!("wait: thread {} -> {:?}, sleep", thread::current().id(), target);
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let condvar = proc.child_exit.clone();
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drop(proc); // must release lock of current process
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condvar._wait();
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2019-02-22 10:10:24 +04:00
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}
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}
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2019-03-07 10:21:26 +04:00
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pub fn sys_exec(name: *const u8, argv: *const *const u8, envp: *const *const u8, tf: &mut TrapFrame) -> SysResult {
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info!("exec: name: {:?}, argv: {:?} envp: {:?}", name, argv, envp);
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2019-03-02 15:09:39 +04:00
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let proc = process();
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let name = if name.is_null() { String::from("") } else {
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2019-03-22 19:45:57 +04:00
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unsafe { proc.vm.check_and_clone_cstr(name)? }
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2019-02-22 10:10:24 +04:00
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};
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2019-03-07 10:21:26 +04:00
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if argv.is_null() {
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2019-02-28 06:59:52 +04:00
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return Err(SysError::EINVAL);
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2019-02-22 10:10:24 +04:00
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}
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2019-03-02 15:09:39 +04:00
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// Check and copy args to kernel
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let mut args = Vec::new();
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unsafe {
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2019-03-07 10:21:26 +04:00
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let mut current_argv = argv as *const *const u8;
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2019-03-22 19:45:57 +04:00
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proc.vm.check_read_ptr(current_argv)?;
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2019-03-07 10:21:26 +04:00
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while !(*current_argv).is_null() {
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2019-03-22 19:45:57 +04:00
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let arg = proc.vm.check_and_clone_cstr(*current_argv)?;
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2019-03-02 15:09:39 +04:00
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args.push(arg);
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2019-03-07 10:21:26 +04:00
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current_argv = current_argv.add(1);
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2019-03-02 15:09:39 +04:00
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}
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}
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2019-03-07 10:21:26 +04:00
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info!("exec: args {:?}", args);
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2019-03-02 15:09:39 +04:00
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2019-02-22 10:10:24 +04:00
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// Read program file
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let path = args[0].as_str();
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2019-03-23 11:47:44 +04:00
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let inode = crate::fs::ROOT_INODE.lookup_follow(path, FOLLOW_MAX_DEPTH)?;
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2019-03-17 20:18:03 +04:00
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let buf = inode.read_as_vec()?;
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2019-02-22 10:10:24 +04:00
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// Make new Thread
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let iter = args.iter().map(|s| s.as_str());
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let mut thread = Thread::new_user(buf.as_slice(), iter);
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2019-03-17 20:18:03 +04:00
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thread.proc.lock().clone_for_exec(&proc);
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2019-02-22 10:10:24 +04:00
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// Activate new page table
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2019-03-22 19:45:57 +04:00
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unsafe { thread.proc.lock().vm.activate(); }
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2019-02-22 10:10:24 +04:00
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// Modify the TrapFrame
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*tf = unsafe { thread.context.get_init_tf() };
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// Swap Context but keep KStack
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::core::mem::swap(&mut current_thread().kstack, &mut thread.kstack);
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::core::mem::swap(current_thread(), &mut *thread);
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Ok(0)
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}
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pub fn sys_yield() -> SysResult {
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thread::yield_now();
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Ok(0)
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}
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/// Kill the process
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2019-03-11 13:55:39 +04:00
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pub fn sys_kill(pid: usize, sig: usize) -> SysResult {
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info!("kill: {} killed: {} with sig {}", thread::current().id(), pid, sig);
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let current_pid = process().pid.get().clone();
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if current_pid == pid {
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// killing myself
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sys_exit_group(sig);
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} else {
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if let Some(proc_arc) = PROCESSES.read().get(&pid).and_then(|weak| weak.upgrade()) {
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let proc = proc_arc.lock();
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// quit all threads
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for tid in proc.threads.iter() {
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processor().manager().exit(*tid, sig);
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}
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// notify parent and fill exit code
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// avoid deadlock
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let proc_parent = proc.parent.clone();
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let pid = proc.pid.get();
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drop(proc);
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if let Some(parent) = proc_parent {
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let mut parent = parent.lock();
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parent.child_exit_code.insert(pid, sig);
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parent.child_exit.notify_one();
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}
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Ok(0)
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} else {
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Err(SysError::EINVAL)
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}
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2019-02-22 10:10:24 +04:00
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}
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}
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/// Get the current process id
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pub fn sys_getpid() -> SysResult {
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2019-03-09 20:58:10 +04:00
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info!("getpid");
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2019-03-10 11:23:15 +04:00
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Ok(process().pid.get())
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2019-02-22 10:10:24 +04:00
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}
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2019-03-07 19:04:52 +04:00
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/// Get the current thread id
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pub fn sys_gettid() -> SysResult {
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2019-03-09 20:58:10 +04:00
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info!("gettid");
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2019-03-07 19:04:52 +04:00
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// use pid as tid for now
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2019-03-08 15:04:39 +04:00
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Ok(thread::current().id())
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2019-03-07 19:04:52 +04:00
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}
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2019-03-02 15:09:39 +04:00
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/// Get the parent process id
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pub fn sys_getppid() -> SysResult {
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2019-03-10 21:06:44 +04:00
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Ok(process().parent.as_ref().unwrap().lock().pid.get())
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2019-03-02 15:09:39 +04:00
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}
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2019-03-09 08:49:59 +04:00
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/// Exit the current thread
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2019-03-10 11:23:15 +04:00
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pub fn sys_exit(exit_code: usize) -> ! {
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let tid = thread::current().id();
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info!("exit: {}, code: {}", tid, exit_code);
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let mut proc = process();
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proc.threads.retain(|&id| id != tid);
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2019-03-11 13:19:00 +04:00
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// for last thread,
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// notify parent and fill exit code
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// avoid deadlock
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let exit = proc.threads.len() == 0;
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let proc_parent = proc.parent.clone();
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let pid = proc.pid.get();
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2019-03-10 11:23:15 +04:00
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drop(proc);
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2019-03-11 13:19:00 +04:00
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if exit {
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if let Some(parent) = proc_parent {
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let mut parent = parent.lock();
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parent.child_exit_code.insert(pid, exit_code);
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parent.child_exit.notify_one();
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}
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}
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2019-03-07 10:55:31 +04:00
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2019-03-09 08:54:26 +04:00
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// perform futex wake 1
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// ref: http://man7.org/linux/man-pages/man2/set_tid_address.2.html
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// FIXME: do it in all possible ways a thread can exit
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// it has memory access so we can't move it to Thread::drop?
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let clear_child_tid = current_thread().clear_child_tid;
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if clear_child_tid != 0 {
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unsafe { (clear_child_tid as *mut u32).write(0); }
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let queue = process().get_futex(clear_child_tid);
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queue.notify_one();
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}
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2019-03-10 11:23:15 +04:00
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processor().manager().exit(tid, exit_code as usize);
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processor().yield_now();
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unreachable!();
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}
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2019-03-10 21:06:44 +04:00
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/// Exit the current thread group (i.e. process)
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2019-03-10 11:23:15 +04:00
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pub fn sys_exit_group(exit_code: usize) -> ! {
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let mut proc = process();
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info!("exit_group: {}, code: {}", proc.pid, exit_code);
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// quit all threads
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for tid in proc.threads.iter() {
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processor().manager().exit(*tid, exit_code);
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}
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2019-03-11 13:19:00 +04:00
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// notify parent and fill exit code
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// avoid deadlock
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let proc_parent = proc.parent.clone();
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let pid = proc.pid.get();
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2019-03-10 11:23:15 +04:00
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drop(proc);
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2019-03-11 13:19:00 +04:00
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if let Some(parent) = proc_parent {
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let mut parent = parent.lock();
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parent.child_exit_code.insert(pid, exit_code);
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parent.child_exit.notify_one();
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}
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2019-03-10 11:23:15 +04:00
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2019-02-22 10:10:24 +04:00
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processor().yield_now();
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unreachable!();
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}
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2019-03-09 10:08:56 +04:00
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pub fn sys_nanosleep(req: *const TimeSpec) -> SysResult {
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2019-03-22 19:45:57 +04:00
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process().vm.check_read_ptr(req)?;
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2019-03-09 10:08:56 +04:00
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let time = unsafe { req.read() };
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info!("nanosleep: time: {:#?}", time);
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thread::sleep(time.to_duration());
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2019-02-22 10:10:24 +04:00
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Ok(0)
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}
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pub fn sys_set_priority(priority: usize) -> SysResult {
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let pid = thread::current().id();
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processor().manager().set_priority(pid, priority as u8);
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Ok(0)
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}
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