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I can't understand why this code is executed is not the way I want.

define('TEST', 123);
echo TEST;
echo "\n";
var_dump( defined(TEST) );

print:

123
bool(false)
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2  
@downvoters, mind explaining? This is a good question, it's clear what is being asked, he has tried something himself and shared his code. He also states his expectations and what the result actually is. –  Kevin Jul 29 '13 at 10:50

3 Answers 3

up vote 9 down vote accepted

Because you're not referring to the constant named TEST - you're referring to whatever TEST contains.

Wrapped out, this is what you're doing:

var_dump( defined(123) );

Refer to the constant name instead (enclose it in quotes):

var_dump( defined('TEST') );
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use have call it wrong

define('TEST', 123);
echo TEST;
echo "\n";
var_dump( defined(TEST) );//provide The constant name you are providing 123 so it not defined
//correct call would be
var_dump( defined('TEST') );
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Probably because defined() require a string as parameter.

var_dump( defined('TEST') );
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Not entirely true. If you try defined(TEST) and the constant is not defined, you'll get an E_NOTICE, but it'll convert it to the string TEST, so if it isn't defined, it's the same as saying defined('TEST'). –  h2ooooooo Jul 29 '13 at 10:51
    
@h2ooooooo According to the php docs "bool defined ( string $name )" and "Returns TRUE if the named constant given by name has been defined, FALSE otherwise." –  Kevin Jul 29 '13 at 10:53

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