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<>;
print $_

But this works:

while(<>){
  print $_;
}

Why doesn't the first version work?

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3 Answers 3

up vote 9 down vote accepted

Because while (<>) is shorthand for while(defined($_ = <ARGV>)), but <>; is just <ARGV>;. You can see this with the B::Deparse module.

Given the file example.pl

#!/usr/bin/perl

use strict;
use warnings;

<>;

while (<>) {
}

the command

perl -MO=Deparse example.pl

will print

use warnings;
use strict 'refs';
<ARGV>;
while (defined($_ = <ARGV>)) {
    ();
}
example.pl syntax OK

This is an example of Perl's famous DWIMery. I believe it was done to stop people from doing the wasteful

for (<>) {
}

There is no value to special casing <> in void context, and, in fact, it would probably be harmful since when you say <>; you are most often trying to throw away a line you don't want from the filehandle. Having $_ catch it would not be efficient or desirable.

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What does -MO mean? I can find -M -O but not -MO.. –  new_perl Jul 27 '11 at 1:57
5  
-Mmodule=arg1,arg2 is equivalent to use module qw/arg1 arg2/;, so -MO=Deparse is equivalent to use O qw/deparse/;. The O module makes it easy to load multiple backend modules (i.e. the ones in the B:: namespace). –  Chas. Owens Jul 27 '11 at 2:22

The Perl while (<>) statement has an implicit assignment to $_, which is missing in your first snippet.

This is described in man perlop:

If and only if the input symbol is the only thing inside the conditional of a while statement (even if disguised as a for(;;) loop), the value is automatically assigned to the global variable $_, destroying whatever was there previously.

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Because the 2nd one is a special case, as if you had written:

while (defined($_ = <>)) {

The 1st one is not a special case. Since you did not store the input line anywhere, it did not get saved.

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