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The negation operator has higher precedence than the assignment operator, why is it lower in an expression?

e.g.

if (!$var = getVar()) {

In the previous expression the assignment happens first, the negation later. Shouldn't the negation be first, then the assignment?

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2 Answers 2

up vote 17 down vote accepted

It's a "special case"
http://docs.php.net/manual/en/language.operators.precedence.php:

Note:

Although = has a lower precedence than most other operators, PHP will still allow expressions similar to the following: if (!$a = foo()), in which case the return value of foo() is put into $a.

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The left hand side of = has to be a variable. $var is a variable, whereas !$var is not (it's an expr_without_variable).

Thus PHP parses the expression in the only possible way, namely as !($var = getVar()). Precedence never comes to play here.

An example of where the the precedence of = is relevant is this:

$a = $b || $c ====> $a = ($b || $c) because || has higher precedence than =
$a = $b or $c ====> ($a = $b) or $c because or has lower precedence than =
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6  
While the accepted answer is technically correct, this answer is more thorough and easier to understand. –  Logos Mar 1 '13 at 3:17
2  
Yes, if it were possible I'd delete my answer in favour of this one. –  VolkerK Mar 1 '13 at 7:14
    
You can flag it for moderator attention and explain if you want. That said, I don't think your answer is bad (or be deleted). This one is just better. :) –  Amal Murali Nov 16 '13 at 19:01

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