5

I've inherited some Perl code and occasionally I see subroutines defined like this:

sub do_it($) {
    ...
}

I can't find the docs that explain this. What does the dollar symbol in brackets mean?

7

It is a subroutine prototype.

The single $ means that the sub will only accept a single scalar value, and will interpret other types using scalar context. For instance, if you pass an array as the param e.g. do_it(@array), Perl will not expand @array into a list, but instead pass in the length of the array to the subroutine body.

This is sometimes useful as Perl can give an error message when the subroutine is called incorrectly. Also, Perl's interpreter can use the prototypes to disambiguate method calls. I have seen the & symbol (for code block prototype) used quite neatly to write native-looking routines that call to anonymous code.

However, it only works in some situations - e.g. it doesn't work very well in OO Perl. Hence its use is a bit patchy. Perl Best Practices recommends against using them.

2
  • 1
    Perhaps better stated as "... will only accept a single parameter, which will be evaluated in scalar context."
    – tjd
    Apr 27 '16 at 12:47
  • 1
    @Neil Slater, No, it doesn't mean that. @a='one_scalar_value'; do_it(@a) would normally pass a single scalar value, but the prototype breaks this. That particular prototype means "The first (and only) item of the argument list is to be evaluated in scalar context".
    – ikegami
    Apr 27 '16 at 12:57
6

The ($) is called a subroutine prototype.

See the PerlSub man page for more information: http://perldoc.perl.org/perlsub.html#Prototypes

Prototyping isn't very common nowadays. Best Practice is not using it.

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