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I am (a complete perl newbie) doing string compare in an if statement:

If I do following:

if( $str1 == "taste" && $str2 == "waste" ) { }

I see the correct result (i.e. if the condition matches, it evaluates the "then" block). But I see this warning:

Argument "taste" isn't numeric in numeric eq (==) at line number x.
Argument "waste" isn't numeric in numeric eq (==) at line number x.

But if I do:

if( $str1 eq "taste" && $str2 eq "waste" ) { }

Even if the if condition is satisfied, it doesn't evaluate the "then" block.

Here, $str1 is taste and $str2 is waste.

How should I fix this?

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4  
Please post a self-contained example. Without knowing what $str1 and $str2 are, we can't tell you why control is reaching more code we don't see. To your question, eq compares scalars lexicographically so is useful here, while == compares numerically so won't meaningfully compare anything to "taste". –  Mike Samuel Dec 26 '12 at 21:51
    
Updated the que. –  hari Dec 26 '12 at 21:53
    
@hari Post the exact code where the variables are initialized. If possible, post the complete function or script. –  cdhowie Dec 26 '12 at 21:53
1  
It's not the correct result if the "then" block is evaluated even when the condition is false. –  ikegami Dec 27 '12 at 3:35

4 Answers 4

up vote 34 down vote accepted

First, eq is for comparing strings; == is for comparing numbers.

Even if the "if" condition is satisfied, it doesn't evaluate the "then" block.

I think your problem is that your variables don't contain what you think they do. I think your $str1 or $str2 contains something like "taste\n" or so. Check them by printing before your if: print "str1='$str1'\n";.

The trailing newline can be removed with the chomp($str1); function.

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How do I remove trailing newline if present before comparing? –  hari Dec 26 '12 at 21:56
    
@hari use chomp. See perldoc -f chomp. –  squiguy Dec 26 '12 at 21:56
    
yes, $str1 has "\n" at the end but using chomp is not helping. If I do: if( $str1 eq "taste\n") it works. –  hari Dec 26 '12 at 22:25
    
Damn, I also had a carriage return. This is what I needed: $str1 =~ s/\r|\n//g; What a rookie mistake. –  hari Dec 26 '12 at 23:00

== does a numeric comparison: it converts both arguments to a number and then compares them. As long as $str1 and $str2 both evaluate to 0 as numbers, the condition will be satisfied.

eq does a string comparison: the two arguments must match lexically (case-sensitive) for the condition to be satisfied.

"foo" == "bar";   # True, both strings evaluate to 0.
"foo" eq "bar";   # False, the strings are not equivalent.
"Foo" eq "foo";   # False, the F characters are different cases.
"foo" eq "foo";   # True, both strings match exactly.
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1  
"2foo" == "3bar"; #False, the strings evaluates to respectively 2 and 3 –  Jean-Francois T. Dec 1 at 9:49
    
@Jean-FrancoisT. A more interesting example would have been "2foo" == "2bar", which would be true. Your example producing false is unsurprising and doesn't really illustrate the difference between the operators because those strings won't compare as equal with any operator. –  cdhowie Dec 1 at 16:43
1  
The idea behind the example was to draw the parallel with "foo"=="bar" which is true, while with "2foo"=="3bar" is not –  Jean-Francois T. Dec 1 at 17:08

Did you try to chomp the $str1 and $str2?

I found a similar issue with using (another) $str1 eq 'Y' and it only went away when I first did:

chomp($str1);
if ($str1 eq 'Y') {
....
}

works after that.

Hope that helps.

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May be the condition you are using is incorrect :

$str1 == "taste" && $str2 == "waste"
the program will enter into THEN part only when both of the stated conditions are true.

You can try with $str1 == "taste" || $str2 == "waste" , this will execute THEN part if anyone of the above condition is true.

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