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I need to understand what happens to a process in Unix when it calls the pause() function.

Considering a simple state diagram with three states: ready, run and wait. If my programm only prints its pid and than makes pause, will the program be indefinitely in "wait" state?

If it does while(1) { pause() }, it will be indefinitely in "wait" state too?

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From the manpage:

pause() causes the calling process (or thread) to sleep until a signal is delivered that either terminates the process or causes the invocation of a signal-catching function.

So the program may not be indefinitely in sleep state ("wait", to use your word). It will leave that state if a signal is received. However, if you enclose the pause() call in a tight infinite loop as per your example, the program will run again when a signal is received but promptly go back to sleep.

When signals are received during pause(), the signal handler (if any) will run, and control will return to the point right after the pause() syscall as soon as the handler returns.

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