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Code

$ cat test1
hello 
i am 
lazer

nananana
$ cat 1.pl
use strict;
use warnings;

my @fh;
open $fh[0], '<', 'test1', or die $!;

my @res1 = <$fh[0]>;  # Way1: why does this not work as expected?
print @res1."\n"; 

my $fh2 = $fh[0];
my @res2 = <$fh2>;    # Way2: this works!
print @res2."\n";

Run

$ perl 1.pl
1
5
$

I am not sure why Way1 does not work as expected while Way2 does. Aren't those two methods the same? What is happening here?

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5 Answers

up vote 10 down vote accepted

Because of the dual nature of the <> operator (i.e. is it glob or readline?), the rules are that to behave as readline, you can only have a bareword or a simple scalar inside the brackets. So you'll have to either assign the array element to a simple scalar (as in your example), or use the readline function directly.

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perl -le 'print for < < <=> > >' –  tchrist Nov 30 '10 at 5:49
    
@tchrist: Any point to that other than being a fun example of glob? –  runrig Dec 2 '10 at 18:46
    
No, that was the point. :) –  tchrist Dec 2 '10 at 19:08
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Because from perlop:

If what's within the angle brackets is neither a filehandle nor a simple scalar variable containing a filehandle name, typeglob, or typeglob reference, it is interpreted as a filename pattern to be globbed, and either a list of filenames or the next filename in the list is returned, depending on context. This distinction is determined on syntactic grounds alone. That means <$x> is always a readline() from an indirect handle, but <$hash{key}> is always a glob().

You can spell the <> operator as readline instead to avoid problems with this magic.

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Anything more complex than a bareword (interpreted as a file handle) or a simple scalar $var is interpreted as an argument to the glob() function. Only barewords and simple scalars are treated as file handles to be iterated by the <...> operator.

Basically the rules are:

<bareword> ~~  readline bareword
<$scalar>  ~~  readline $scalar
<$array[0]> ~~ glob "$array[0]"
<anything else> ~~ glob ...
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It's because <$fh[0]> is parsed as glob($fh[0]).

Use readline instead:

my @res1 = readline($fh[0]);
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Since no one has mentioned it yet ... you can enclose your complex filehandle expression inside braces and it will be treated correctly by the <> operator:

my @res1 = <$fh[0]>;     # treated as glob($fh[0])
my @res1 = <{$fh[0]}>;   # treated as readline($fh[0])


Edit: Never mind. The { complex-file-expression } construction works for passing a filehandle to print, but not to readline.

printf {$fh[0]} "This %s work.\n", "will";
@this_wont_work = <{$fh[0]}>;
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rule: Are you sure? Doesn't seem to work. –  Lazer Nov 29 '10 at 16:45
    
rule => I got bitten by that assumption in an answer here too, its one of the few times that an extra pair of braces doesn't work (probably has to be that way because the brace characters can be part of a glob statement). –  Eric Strom Nov 29 '10 at 21:04
    
Does *{$fh[0]} work--I'm guessing not if it's a pad variable. –  Axeman Nov 29 '10 at 23:52
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