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I need to check if value is defined as anything, including null. isset treats null values as undefined and returns false. Take the following as an example:

$foo = null;

if(isset($foo)) // returns false
if(isset($bar)) // returns false
if(isset($foo) || is_null($foo)) // returns true
if(isset($bar) || is_null($bar)) // returns true, raises a notice

Note that $bar is undefined.

I need to find a condition that satisfies the following:

if(something($bar)) // returns false;
if(something($foo)) // returns true;

Any ideas?

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4  
if(isset($foo)) // returns false, i fell off the chair, all these years... –  max4ever Sep 21 '12 at 13:42

7 Answers 7

up vote 32 down vote accepted

IIRC, you can use get_defined_vars() for this:

$foo = NULL;
$vars = get_defined_vars();
if (array_key_exists('bar', $vars)) {}; // Should evaluate to FALSE
if (array_key_exists('foo', $vars)) {}; // Should evaluate to TRUE
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+1 I was going to suggest the same function, get_defined_vars happily copes with scope. –  salathe Sep 27 '10 at 12:00
1  
Seems to be working, but I was hoping for something simpler. Oh well. Let's see if anyone can come up with a one liner. –  Tatu Ulmanen Sep 27 '10 at 12:13
    
well, you don't need vars, so in theory its one line "if(array_key_exists('foo',get_defined_vars())){} " –  Hannes Sep 27 '10 at 12:47

See http://stackoverflow.com/questions/418066/best-way-to-test-for-a-variables-existence-in-php-isset-is-clearly-broken

 if( array_key_exists('foo', $GLOBALS) && is_null($foo)) // true & true => true
 if( array_key_exists('bar', $GLOBALS) && is_null($bar)) // false &  => false
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2  
The code you quote only works if the variable is in the global scope. –  Raveline Sep 27 '10 at 11:33
    
Indeed but isn't it the most frequent case ? In a function you will have variables at global scope and arguments (which are always defined). You could also have object properties but then you can use 'property_exists'. –  Loïc Février Sep 27 '10 at 11:37
    
Using $GLOBALS seems a bit volatile, I have to do some testing myself before I can declare this as working. –  Tatu Ulmanen Sep 27 '10 at 12:14

If you are dealing with object properties whcih might have a value of NULL you can use: property_exists() instead of isset()

<?php

class myClass {
    public $mine;
    private $xpto;
    static protected $test;

    function test() {
        var_dump(property_exists($this, 'xpto')); //true
    }
}

var_dump(property_exists('myClass', 'mine'));   //true
var_dump(property_exists(new myClass, 'mine')); //true
var_dump(property_exists('myClass', 'xpto'));   //true, as of PHP 5.3.0
var_dump(property_exists('myClass', 'bar'));    //false
var_dump(property_exists('myClass', 'test'));   //true, as of PHP 5.3.0
myClass::test();

?>

As opposed with isset(), property_exists() returns TRUE even if the property has the value NULL.

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2  
You can do the same for arrays with array_key_exists(); –  Calum Feb 26 at 15:40

You could use is_null and empty instead of isset(). Empty doesn't print an error message if the variable doesn't exist.

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I am using is_null. The result is same regardless of the isset. –  Tatu Ulmanen Sep 27 '10 at 11:27
    
I made a mistake while posting my first answer : did you try with empty() ? –  Raveline Sep 27 '10 at 11:32
    
This won't work for values that are not empty and not NULL such as FALSE, 0, array() or "". –  Calum Feb 26 at 15:22

Here some silly workaround using xdebug. ;-)

function is_declared($name) {
    ob_start();
    xdebug_debug_zval($name);
    $content = ob_get_clean();

    return !empty($content);
}

$foo = null;
var_dump(is_declared('foo')); // -> true

$bla = 'bla';
var_dump(is_declared('bla')); // -> true

var_dump(is_declared('bar')); // -> false
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Doesn't look very portable.. :) –  Tatu Ulmanen Sep 27 '10 at 12:09
    
Indeed. And performance may drop as well. ;-) –  Philippe Gerber Sep 29 '10 at 17:28

is_null($bar) returns true, since it has no values at all. Alternatively, you can use:

if(isset($bar) && is_null($bar)) // returns false

to check if $bar is defined and will only return true if:

$bar = null;
if(isset($bar) && is_null($bar)) // returns true
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No, he said that if(isset($bar)) gives false when $bar = null. –  Loïc Février Sep 27 '10 at 11:32
    
my bad. will update my answer. –  Ruel Sep 27 '10 at 11:57
1  
This will not pass any other variables than null (eg. if $bar = "test"). –  Tatu Ulmanen Sep 27 '10 at 12:08
    
When $bar = null isset() will return "false" and is_null() will return true. False and true gives always false. –  Bartek Kosa Jul 20 '13 at 21:39

The following code written as PHP extension is equivalent to array_key_exists($name, get_defined_vars()) (thanks to Henrik and Hannes).

// get_defined_vars()
// https://github.com/php/php-src/blob/master/Zend/zend_builtin_functions.c#L1777
// array_key_exists
// https://github.com/php/php-src/blob/master/ext/standard/array.c#L4393

PHP_FUNCTION(is_defined_var)
{

    char *name;
    int name_len;

    if (zend_parse_parameters(ZEND_NUM_ARGS() TSRMLS_CC, "s", &name, &name_len) == FAILURE) {
        return;
    }

    if (!EG(active_symbol_table)) {
        zend_rebuild_symbol_table(TSRMLS_C);
    }

    if (zend_symtable_exists(EG(active_symbol_table), name, name_len + 1)) {
        RETURN_TRUE;
    }

}
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