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I just found the following code in a PHP script and was wondering why it didn't cause PHP to report an error?

$current_name == ($type != 3) ? $name : '' ;

It was a typo and the code was supposed to read:

$current_name = ($type != 3) ? $name : '' ;
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You don't need those parantheses [I mean: (($type != 3) ? $name : '' ) ], but you will be effectively comparing $current_name with ($type != 3) –  Jauzsika Jul 6 '11 at 10:15
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Why should it, theres nothing wrong with that statement. It returns a boolean value to nowhere. Try var_dump($current_name == ($type != 3) ? $name : ''); –  feeela Jul 6 '11 at 10:15
    
@feeela for some reason I though that inline comparison's weren't allowed, as they don't do anything. –  Jon Jul 6 '11 at 10:47

2 Answers 2

up vote 3 down vote accepted

That is a bizarre bit of code, but only because it is unreadable and useless, not because it is invalid. It uses the ternary operator, which is basically a shorthand if construct in the format condition ? if true : if false.

This code does the following:

  1. Check whether $type != 3. If $type is 3, return false, otherwise true.
  2. Compare the result of #1 to $current_name.
  3. If #2 is true (i.e. $current_name == true), return $name. Otherwise (i.e. $current_name == false) return ''.

Of course, all this does absolutely nothing, because there is no assignment in the statement.

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Are you sure it's not actually evaluating as: ($current_name == true) or ($current_name == false) depending on ($type != 3) and then returning either $name or '' based on the $current_name == x to void? –  Alexander Varwijk Jul 6 '11 at 11:04
    
@Alexander Yes, you're right -- I thought ?: had higher precedence than it does. –  lonesomeday Jul 6 '11 at 11:18

It is syntactically correct. The ternary expression is evaluated, then compared to $current_name. The result of the whole expression is not used.

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