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The following snippet is not working as expected:

$k{"foo"}=1;
$k{"bar"}=2; 
if(not defined($k{"foo"}) && not defined($k{"bar"})){
    print "Not defined\n";
}
else{
    print "Defined"
}

Since both $k{"foo"} and $k{"bar"} are defined, the expected output is "Defined". Running the code, however, returns "Not defined".

Now, playing around with the code I realized that placing parentheses around each of the not defined() calls produces the desired result:

if((not defined($k{"foo"})) && (not defined($k{"bar"}))){print "Not Defined"}

I imagine this has something to do with operator precedence but could someone explain what exactly is going on?

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1  
Maybe you do not know what not means. –  mob Oct 18 '12 at 15:52
    
Since both $k{"foo"} and $k{"bar"} are defined, the expected output is "Not Defined". How is that ? –  Jean Oct 18 '12 at 15:55
    
@mob, I've read the documentation and I think I do. Clearly, however, I am missing something. –  terdon Oct 18 '12 at 16:00
    
@Jean, typo. Fixed now, thanks. –  terdon Oct 18 '12 at 16:02

1 Answer 1

up vote 14 down vote accepted

Precedence problem.

not defined($k{"foo"}) && not defined($k{"bar"})

means

not ( defined($k{"foo"}) && not defined($k{"bar"}) )

which is equilvalent to

!defined($k{"foo"}) || defined($k{"bar"})

when you actually want

!defined($k{"foo"}) && !defined($k{"bar"})

Solutions:

  • !defined($k{"foo"}) && !defined($k{"bar"})
  • not defined($k{"foo"}) and not defined($k{"bar"})
  • (not defined($k{"foo"})) && (not defined($k{"bar"}))

PS - The language is named "Perl", not "PERL".

share|improve this answer
    
Perfect, thanks! As for PERL, I have often seen it written in all caps like that and have been corrected when writing Perl. I'll take your word for it though (I've changed it to Perl in the title). –  terdon Oct 18 '12 at 16:04
1  
@terdon, official answer –  ikegami Oct 18 '12 at 16:10

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