0

I have a test script like this:

asdf() {
  return 1
}

asdf && echo 123 && exit
echo 321

321 is outputed instead of 123

Why is that?

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The && operator is a logical AND. It does lazy evaluation : if the statement to the left evaluates to false (i.e. non-zero return code), then applying the logical AND will still evaluate to false anyway, so evaluating the right part is useless (in the logical predicate sense).

Since your function returns 1 (false as far as Bash is concerned), everything to the right is ignored, your exit is not reached, and the echo statement is executed.

If you want to force execution of all commands on that line, use this instead:

{ asdf ; echo 123 ; exit ; }

A command list like this will always evaluate every one of them, irrespective of their return code. Please note that the last semi-colon is mandatory.

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  • Try not to use Boolean terminology when discussing exit statuses. bash does have a context where Boolean values are represented with true as 1 and false as 0, namely arithmetic expressions (try echo $(( 3 < 5))), so it's better to keep the concepts of truth and success distinct. – chepner Feb 6 '17 at 21:39
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echo 123 will only be executed iff asdf succeeds as you have tacked the short circuit operator -- && after asdf; now you have return-ed from the function asdf with return value 1, which in turn becomes the exit status of asdf, so the command asdf is considered failed, hence echo 123 (and of course exit) is never run.

There is no such condition on echo 321, hence it is executed in the usual manner.

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