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Why does

if (!empty(constant('MY_CONST')))

throw this error

Fatal error: Can't use function return value in write context

and how do I work around it?

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maybe you want if(!defined("MY_CONST"))... –  steven Jun 25 '13 at 11:16
    
@steven No I don't, I really want to check if it has a proper value. –  Cobra_Fast Jun 25 '13 at 11:18
    
Constant() returns the value of the constant defined by some name which is passed to the Constant() function. I guess you havent defined any constant`s against MY_CONST.REF:php.net/manual/en/function.constant.php –  dreamweiver Jun 25 '13 at 11:18

4 Answers 4

up vote 5 down vote accepted

See the note here:

Prior to PHP 5.5, empty() only supports variables; anything else will result in a parse error. In other words, the following will not work: empty(trim($name)). Instead, use trim($name) == false.

So you should rather compare against null as constant() will return null for undefined constants, or use defined() instead.

if(constant('MY_CONST')!==null) { ... }
if(!defined('MY_CONST')) { ... }
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1  
That's a shame. Here's what I did now: function ConstEmpty($name) { $value = constant($name); return empty($value); } Thanks for the info though! –  Cobra_Fast Jun 25 '13 at 11:22

With PHP 5.5.0 your code will work as is. However, you can simply break your statement into 2 pieces for backward compatibility.

$a = constant('MY_CONST');
if(!empty($a)) { //do something }

Alternatively, you can use the defined() function.

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It's due to implementation details in PHP: until PHP 5.4.x, only variables can be tested using empty().

What you're trying to do will likely work in php 5.5. Alternatively, use:

if (defined('CONST') && CONST)
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empty() can only be used to check variables. See the php manual. You can use defined.

if (defined('TEST')) {
    echo TEST;
}
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