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What is the right way to call a function stored in a variable?

my $f = sub () { ... };
&$f();  # 1st
$f->(); # 2nd

Both appear to work, and the first probably worked in perl4.

However, I was wondering what the "official perl5 way" was.

Also, are there any performance implications?

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3  
For me, the second one is waaaay more readable, and somehow I think that should be of the most concern. ) –  raina77ow Aug 20 '12 at 15:18

2 Answers 2

up vote 6 down vote accepted

Both are the right way. Perl is not about forcing any special style down your throat.

Style #1 &$f()

Pro:
  • Emphasizes that we are using a subroutine
Con:
  • Looks like line noise
  • Overrides function templates
  • Seems a bit perl4-ly to me
Caveats:

In the dark ages of perl4, there were no references. One could simulate references by passing around variable names (*shudder*). This also works with subs, so this code runs:

sub f { (shift == 0) ? 1 : 0 }
$g = "f";
print &$g(1); # prints 0;
print &$g(0); # prints 1;

Please use strict 'refs' to guard against this horror.

Style #2 $f->()

Pro:
  • Emphasizes that we are handling a reference
  • Looks cleaner
Con:
  • can be confused with objects and hashrefs
Caveats:

Same as with the other syntax, as they are the same under the hood. But the dereference operator is not misused as often.

Performance implications

Lets face it, if we were all about performance, we would be writing assembler. If you want to optimize Perl, first optimize the algorithm, then code everything in C/XS, throw away any objects and modules, and finally discuss dereferencing syntax.

I would guess style #1 is faster in theory, but I doubt it would have serious implications in real life.

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+1. I don't think that line about objects and hashrefs confusion is for real, but otherwise, very good points. ) –  raina77ow Aug 20 '12 at 15:26
    
I think you should mention what &$f; does. &$f() is totally surpassed in Perl 5, but &$f still does something that neither his examples do. –  Axeman Aug 20 '12 at 16:12

I sincerely doubt there are any differences performance, since both methods result in the same code:

$ perl -MO=Deparse -e'&$f()'
&$f();
-e syntax OK
$ perl -MO=Deparse -e'$f->()'
&$f();
-e syntax OK
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