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Can I use fprintf(stderr) in a signal (SIGALRM) handler with glibc/linux?

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2 Answers 2

up vote 3 down vote accepted

No you cannot. Check the manpage signal(7) for a list of async-signal-safe functions. fprintf is not included in that list.

If you don't need formatting then you can use write(STDERR_FILENO, <buf>, <buflen>) to write to stderr.

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is it a list of functions from libc or list of kernel syscalls? –  osgx Dec 29 '10 at 17:06
    
linux.die.net/man/7/signal there is no list. Can you give me a link? –  osgx Dec 29 '10 at 17:07
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@osgx: link added to answer. It is a list of posix functions which also includes the libc standard. However, the libc standard does not require any libc function (except signal()) to be reentrant, therefore you cannot (portably) use any libc function inside a signal handler. –  Fabian Dec 29 '10 at 17:21

This is not safe, quoting IBM DeveloperWorks article about Signal Handling Safety

Suppose the signal handler prints a message with fprintf and the program was in the middle of an fprintf call using the same stream when the signal was delivered. Both the signal handler's message and the program's data could be corrupted, because both calls operate on the same data structure: the stream itself.

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glibc has a IO lock inside a FILE*. So, fprintf, which does interrupt a first fprintf will wait –  osgx Dec 29 '10 at 17:08
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@osgx: signal handlers aren't threads. Waiting inside a signal handler is very bad news, because the thread holding the lock can't make progress until the signal handler completes. So you have a deadlock. –  Ben Voigt Dec 29 '10 at 17:16
    
@Ben Voigt, I really say "thread"? –  osgx Dec 29 '10 at 17:39
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@osgx: No, you didn't SAY "thread". But you claimed that the lock helped by preventing corruption. It won't. The lock is designed to synchronize access between threads, not between a thread's main code and that same thread's signal handler. Either you have a re-entrant lock, which has absolutely no effect on the signal handler and the corruption still occurs, or you have a non-reentrant lock, which causes deadlock. In neither case does the presence of a lock inside fprintf in any way change the correct answer that "This is not safe." –  Ben Voigt Dec 29 '10 at 18:53

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