Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This snippet of Perl code in my program is giving the wrong result.

$condition ? $a = 2 : $a = 3 ;
print $a;

No matter what the value of $condition is, the output is always 3, how come?

Edit: I wonder if Perl is alone in this regard. Does your favorite language suffer from this bug/feature ?

share|improve this question
add comment

5 Answers

up vote 76 down vote accepted

This is explained in the Perl documentation.

Because of Perl operator precedence the statement is being parsed as

($condition ? $a= 2 : $a ) = 3 ;

Because the ?: operator produces an assignable result, 3 is assigned to the result of the condition.

When $condition is true this means ($a=2)=3 giving $a=3

When $condition is false this means ($a)=3 giving $a=3

The correct way to write this is

$a = ( $condition ? 2 : 3 );
print $a;

We got bitten by this at work, so I am posting here hoping others will find it useful.

share|improve this answer
1  
"When $condition is true this means $a=2=3 giving $a=3" I would have thought $a=2=3 would be an expression syntax error or lvalue required error or such... How exactly does it get evaluated? –  sundar Oct 11 '08 at 13:08
    
You are right I will modify it it is ($a=2)=3 instead of $a=2=3 –  Pat Oct 13 '08 at 13:02
add comment

Once you have an inkling that you might be suffering from precedence problems, a trick to figure out what Perl thought you meant:

perl -MO=Deparse,-p -e '$condition ? $a= 2 : $a= 3 ; print $a;'

In your case, that'll show you:

(($condition ? ($a = 2) : $a) = 3);
print($a);
-e syntax OK

...at which point you should be saying "oh, that explains it"!

share|improve this answer
    
Deparse is a very neat party trick. Of course, once you suspect a precedence problem, you're usually most of the way to the solution ;-) –  RET Sep 22 '08 at 6:56
add comment

Just to extend the previous answer... If, for whatever reason, the assignments need to be part of the conditional, you'd want to write it thusly:

$condition ? ($a=2) : ($a=3);

This would be useful if you're assigning to different variables based on the condition.

$condition ? ($a=2) : ($b=3);

And if you're choosing the variable, but assigning the same thing no matter what, you could even do this:

($condition ? $a : $b) = 3;
share|improve this answer
add comment

Because of Perl operator precedence the statement is being parsed as:

($condition ? $a = 2 : $a ) = 3 ;

Because the ?: operator produces an assignable result, 3 is assigned to the result of the condition.

When $condition is true this means $a=2=3 giving $a=3

When $condition is false this means $a=3 giving $a=3

The correct way to write this is

$a = $condition ? 2 : 3;

In general, you should really get out of the habit of using conditionals to do assignment, as in the original example -- it's the sort of thing that leads to Perl getting a reputation for being write-only.

A good rule of thumb is that conditionals are only for simple values, never expressions with side effects. When you or someone else needs to read this code eight months from now, would you prefer it to read like this?

$x < 3 ? foo($x) : bar($y);

Or like this?

if ($x < 3) {
  $foo($x);
} else {
  $bar($y);
}
share|improve this answer
add comment

One suggestion to Tithonium's answer above:

If you are want to assign different values to the same variable, this might be better (the copy-book way):

$a = ($condition) ? 2 : 3;

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.