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From perlipc/Signals:

eval {
  local $SIG{ALRM} = sub { die "alarm clock restart" };
  alarm 10;
  flock(FH, 2); # blocking write lock
  alarm 0;
};
if ($@ and $@ !~ /alarm clock restart/) { die }

If the operation being timed out is system() or qx(), this technique is liable to generate zombies. If this matters to you, you'll need to do your own fork() and exec(), and kill the errant child process.

I have a similar code, where the operation being timed out is system() or qx().

Is the bad thing about zombies that they consume memory or are there more ways zombies can harm?

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Yes, there are more ways zombies can harm, such as by eating your brain. –  Tyler Durden Jun 10 '13 at 2:46

2 Answers 2

up vote 11 down vote accepted

The primary issue is that they consume process table slots. Linux's process table can hold 64k entries, so this isn't likely to result in problems unless you do a lot of forking without cleaning up the zombies. I expect that most, if not all, other modern *nixes have process tables of the same size. It does look ugly when you run ps, though.

Memory isn't really a problem, as each zombie only takes up a few bytes to record its exit status.

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They consume memory and space in the process table.

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19  
and brains. Don't forget the brains –  Pekka 웃 Mar 18 '11 at 12:23

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