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I'm running the following code:

open my $fh, "<", $file;

$/ = undef;
my $report = <$fh>;
$/ = "\n";

close $fh;

print("$report\n\n");

$file refers to a text file that looks like this:

a    1
b    2
c    3

I ran this code on two different Linux boxes. One of them gave me the expected output (exactly as it appears in the text file). The other one gave me this instead:

GLOB(0x80f1174)

... which effectively prevents me from further manipulating the contents.

I checked the Perl versions - the one the gives me the expected output is 5.10, while the other one is 5.8. However, I have executed the exact same code against similar files in the past with 5.8 that worked.

I've also tried converting the file from DOS to UNIX via :set ff=unix, but to no avail.

share|improve this question
1  
You would get output like GLOB(0x80f1174) if line 4 said my $result = $fh rather than my $result = <$fh>. – mob Apr 2 '12 at 15:41
    
@mob I double-checked my code - it's using <$fh>. – kaspnord Apr 2 '12 at 15:47
    
@kaspnord, Then triple-check. Maybe you aren't executing the file you think you are executing. – ikegami Apr 2 '12 at 16:03
    
That output would also happen if <$fh> was getting interpreted as glob($fh) instead of readline($fh) for some reason. Is the code use a simple scalar for the filehandle like $fh or is the actual filehandle more complicated ($fh[7], $handle{$filename}, &function_that_returns_filehandle(42), etc.)? – mob Apr 2 '12 at 16:07
1  
I'd rather you copy the code from the broken to here. What you post here should be exactly the entire file you ran. – ikegami Apr 2 '12 at 18:06

The broken file does not contain

my $report = <$fh>;    # aka: readline($fh)

Perhaps it contains

my $report = $fh;
my $report = < $fh >;  # aka: glob(" $fh ") = " GLOB(0xXXXXXXX) "
my $report = <$fh >;   # aka: glob("$fh ")  = "GLOB(0xXXXXXXX) "
my $report = < $fh>;   # aka: glob(" $fh")  = " GLOB(0xXXXXXXX)"

<> is a shortcut for readline or glob (no relation to the word GLOB in the output). The spaces make it become glob.

share|improve this answer
    
Sorry, I don't understand what you mean by my file possibly containing those variations of <$fh> - could you explain a little more? I didn't know variations of <$fh> even existed... – kaspnord Apr 2 '12 at 16:16
    
See the "I/O Operators" section in perlop – mob Apr 2 '12 at 16:52
    
@kaspnord, I'm taking guesses as to what your file does contain, because it doesn't contain what you said it does. – ikegami Apr 2 '12 at 18:04

I would recommend just using the File::Slurp module from the CPAN. Then your code could look like this:

use File::Slurp 'read_file';
my $file = '/path/to/some/file';
my $report = read_file $file;
print("$report\n\n");

Much more readable and predictable, IMO.

share|improve this answer

Yes, write

<$fh>

as $fh will lead to errors, as $fh is just the file handle. Printing it will be equivalent to printing the reference. Such as the below codes, writing as FH will leads to running time error.

open FH,$infile or die$!;
while(<FH>){
    @line=split(/,/);
    if($flag==0){
     foreach my $col (@line){
      $header{$col}=$count;
      $count++;
     }
 }
}
close(FH);
share|improve this answer

One can use File::Slurp as Hercynium recommends, the mechanism that is closer to what the OP posted looks like:

my $report = do {
  open my $fh, '<', $file;
  local $/;
  <$fh>;
};

When done this way all of the changes are local to the do block, including closing the filehandle.

N.B. perldoc -f do tells us

do BLOCK

Not really a function. Returns the value of the last command in the sequence of commands indicated by BLOCK.

Note further than the context of the last executed statement is the context of the do block (here scalar). I find do blocks very useful (and under utilized); they are a great way to have lexical execution block, but still easily return something to the outer scope.

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