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With the little that I know about Perl, I was surprised that this syntax doesn't work:

if (exists $wid = $dict{$w}) {
 print "$wid:$c\n";
}

It seems I can't make the assignment $wid = $dict{$w} and check if it exists at the same time:

exists argument is not a HASH or ARRAY element or a subroutine at createWordIndex.pl line 31.

Is there a way to do this kind of assignment? Or do I just need to check existence first and then make the assignment if the condition is true?

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4 Answers 4

up vote 4 down vote accepted

Are you trying to figure out if there's a value there before you print it? Then you'll have to do it this way:

if ( exists($dict{$w}) ) {
    my $wid = $dict{$w};
    print "$wid: $c\n";
}

If you know that the values stored will always be defined, you can do

if ( defined( my $wid = $dict{$w} ) ) {
    print "$wid: $c\n";
}
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you can do it, just skip the exists. if the assignment is made (because there is a $dict{$w}) the side-effect is true.

my %dict;

$dict{one} = 1;
$dict{two} = 2;
$dict{three} = 3;

if ($wid = $dict{four}) {
  print "$wid\n";
}
else {
  print "NO!\n";
}
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There is a problem if $dict{four} exists but its value is 0 –  JE SUIS CHARLIE Dec 10 '12 at 16:09
    
@M42 - right, good point. –  Tim A Dec 10 '12 at 16:30

Alternatively (TIMTOWTDI, after all), you can use the smart match operator (for Perl version >= 5.10):

if($w ~~ (keys %dict))
{
  my $wid = $dict{$w};
  print "$wid: $c\n";
}

Or, alternatively:

if(grep{$w eq $_}(keys %dict))
{
  my $wid = $dict{$w};
  print "$wid: $c\n";
}
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You just answered your question in your question.

"Or do I just need to check existence first and then make the assignment if the condition is true?"

the exists function in your code takes in the scalar $wid. And is clearly stated in your error that the exists function needs a hash or array element

exists argument is not a HASH or ARRAY element or a subroutine at createWordIndex.pl line 31.

so yes. you need to check first if it exists.

friendly advice: try all the things/solutions that you can think of before asking because you might already know the answer to your question. :)

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