218 lines
6.3 KiB
Markdown
218 lines
6.3 KiB
Markdown
# Signals and Nonlocal Jumps
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## Shell
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Linux Process Hierachy: all is rooted from `init` or `systemd` (pid = 1).
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A shell is an application that runs programs on behalf of the user.
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* `sh` Original Unix shell
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* `csh` BSD Unix C Shell
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* `bash` GNU Bourne-Again Shell (default Linux shell)
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## Signals
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All signal is a small message that notifies a process that an event has occured in the system.
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Signal is sent by kernel.
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Signal is identified by small integer ID (1-30).
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Only information in a signal is **its ID** and **the fact that it arrived**.
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| ID | name | Default Action | Corresponding Event |
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| --- | ------- | -------------- | ----------------------------------- |
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| 2 | SIGINT | terminate | user types `Ctrl+C` |
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| 9 | SIGKILL | terminate | kill program |
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| 11 | SIGSEGV | terminate | segmentation violation |
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| 14 | SIGALRM | terminate | timer expired |
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| 17 | SIGCHLD | ignore | child process stopped or terminated |
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Sending a signal is essentially **updating some state** in the context of the destination process.
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Kernel sends a signal for one of the following reasons:
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A destination process receives a signal when it is forced by the kernel and reacts some way to the signal.
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* Ignore
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* Terminate (with optional core-dump)
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* Catch
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* executing a user-level handler function called **signal handler**.
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### Pending & Blocking
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A signal is **pending** if sent but not yet received. There can be at most one pending signal of any particular type because signals are **not queued**. Signal is managed by bitmask. So subsequent signals of same type is discarded.
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* sets `k` bit when delivered
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* clears `k` bit when received
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Blocking signals: a process can block the receipt of certain signals. It is not received until unblocked. It is also managed by bitmask.
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* can be set and cleared by using `sigprocmask`
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### Receiving
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Suppose kernel is returning from an exception handler and is ready to pass control to process `p`
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Kernel computes `pnb = pending(p) & ~blocked(p)`.
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* if `pnb == 0`, no unblocked pending signals for `p`, so just return to `p` normally.
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* otherwise, choose least nonzero bit `k` in `pnb` and force process `p` to receive signal `k`
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* The receipt of the signal triggers action by `p`
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* Repeat for all nonzero `k`
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### Default Action & Signal Handler
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Each signal type has a predefined default action:
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* terminates
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* stops until restarted by a SIGCONT signal
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* ignores
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```c
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handler_t * signal(int signum, handler_t *handler);
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```
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* `SIG_IGN` ignore
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* `SIG_DFL` revert to default action
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* handler function pointer
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### Blocking and Unblocking
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* Implicit blocking
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Kernel blocks any pending signals of type currently being handled.
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* Explicit blocking `sigprocmask()`
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Supporting functions:
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* `sigemptyset()` create empty set
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* `sigfillset()` add every signal number to set
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* `sigaddset()` add signal number to set
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* `sigdelset()` delete signal number from set
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```c
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sigset_t mask, prev_mask;
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sigemptyset(&mask);
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sigaddset(&mask, SIGINT);
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sigprocmaksk(SIG_BLOCK, &mask, &prev_mask);
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// critical section
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sigprocmask(SIG_SETMASK, &prev_mask, NULL);
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```
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### Safe Signal Handling
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Handlers are concurrent with main program and share global data structures. This can lead to troubles.
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Some guidlines help to avoid troubles:
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0. Keep you handlers as simple as possible
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1. Call only **async-signal-safe** functions in your handlers
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2. Save and restore `errno` on entry and exit
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3. Protect accesses to shared data structure by temporarily blocking all signals
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4. Declare global variables as `volatile`
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5. Declare global flags as `volatile sig_atomic_t`
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#### Async-Signal-Safety
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A function satisfying either two conditions(below) is **Async-Signal-Safety function**:
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* **reentrant**: not modifying global data (or static data), only use local data(stack frame).
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* **non-interruptible**: blocking singnals during modifying global data.
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POSIX guarantees that the 117 functions to be async-signal-safe, including:
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* `_exit`, `write`, `wait`, `waitpid`, `sleep`, `kill`
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**IMPORTANT**: `printf`, `malloc`, `sprintf`, `eixt` are **NOT** async-signal-safe.
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### Correct Signal Handling Example for reaping multiple childs
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```c
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void child_handler(int sig) {
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int olderrno = errno; pid_t pid;
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while ((pid = wait(NULL)) > 0) {
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ccount --;
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sio_puts("Handler reaped child ");
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sio_putl((long) pid);
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sio_puts(" \n");
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}
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if (errno != ECHILD) {
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sio_error("wait error");
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}
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errno = olderrno;
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}
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```
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### Portable Signal Handling
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Different UNIX systems have different signal handling sematnics.
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So `sigaction` is introduced to provide a portable interface for signal handling.
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```c
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handler_t * Signal(int signum, handler_t *handler) {
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struct sigaction action, old_action;
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action.sa_handler = handler;
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sigemptyset(&action.sa_mask); // block sigs of type being handled
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action.sa_flags = SA_RESTART; // restart syscalls if possible
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if (sigaction(signum, &action, &old_action) < 0)
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unix_error("Signal error");
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return (old_action.sa_handler);
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}
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```
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### Concurrent Flows to lead Races
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```c
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void handler(int sig) {
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int olderrno = errno;
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pid_t pid;
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while ((pid = waitpid(-1, NULL, 0)) > 0) {
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deletejob(pid);
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}
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if (errno != ECHILD) sio_error("waitpid error");
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errno = olderrno;
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}
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int main() {
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while (1) {
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if ((pid = Fork()) == 0) {
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execve("/bin/date", argv, NULL);
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}
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}
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addjob(pid);
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}
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```
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In above example, the ecf flow can be executed before the deletejob; thus it cannot be deleted.
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Therefore, we need to synchronize the two concurrent flows.
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```c
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void handler(int sig) {
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int olderrno = errno;
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sigset_t mask_all, prev_all;
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pid_t pid;
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sigfillset(&mask_all);
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while ((pid = waitpid(-1, NULL, 0)) > 0) {
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sigprocmask(SIG_BLOCK, &mask_all, &prev_all);
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deletejob(pid);
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sigprocmask(SIG_SETMASK, &prev_all, NULL);
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}
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if (errno != ECHILD) sio_error("waitpid error");
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errno = olderrno;
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}
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int main() {
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pid_t pid;
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sigset_t mask_all, prev_one;
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sigfillset(&mask_all);
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signal(SIGCHLD, handler);
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while (1) {
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sigprocmask(SIG_BLOCK, &mask_all, &prev_one); // Block SIGCHLD
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if ((pid = Fork()) == 0) {
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sigprocmask(SIG_SETMASK, &prev_one, NULL); // Unblock SIGCHLD
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execve("/bin/date", argv, NULL);
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}
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sigprocmask(SIG_BLOCK, &mask_one, NULL);
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addjob(pid);
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sigprocmask(SIG_SETMASK, &prev_one, NULL);
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}
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}
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``` |