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How do you unset a variable variable representing an array element?

function remove($var) {
    unset($$var);
}

$x=array('a'=>1,'b'=>2);
remove('$x["a"]');
var_dump(isset($x['a']));

The code above doesn't unset the array element x['a']. I need that same remove() function to work with $_GET['ijk'].

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If you are only concerned about $_GET, then unset it directly. –  Matthew Dec 7 '10 at 4:26
    
Why don’t you use unset($x["a"]) directly? –  Gumbo May 21 '11 at 16:24

5 Answers 5

Just use unset() or the (unset) cast.

If you want to use a function to unset, something like this would be better.

function removeMemberByKey(&$array, $key) {
    unset($array[$key]);
}

It works!

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You can try,

function remove(&$var,$key) {
    unset($var[$key]);
}

$x=array('a'=>1,'b'=>2);
remove($x,'a');
var_dump(isset($x['a']));
share|improve this answer

Variable variables cannot be used with superglobals, so if you need it to work for $_GET as well, you need to look at using a different method.

Source: http://php.net/manual/en/language.variables.variable.php

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Try This:

<?php 
    /* Unset All Declair PHP variable*/
    $PHP_Define_Vars = array_keys(get_defined_vars());  
    foreach($PHP_Define_Vars as $Blast) {
      // or may be reset them to empty string# ${"$var"} = "";
      unset(${"$Blast"}); 
    }
?>
share|improve this answer

unset is easier to type then remove

When using it with an array element, the array will still exist

You could rewrite your function to treat the parameter as a reference;

EDIT: updated to use alex's code function remove(&$array, $key){ unset($array[$key]); } remove($x,'a');

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That function didn't work for me. –  alex Dec 7 '10 at 4:20
    
From the manual: "If a variable that is PASSED BY REFERENCE is unset() inside of a function, only the local variable is destroyed. The variable in the calling environment will retain the same value as before unset() was called." –  Matthew Dec 7 '10 at 4:21
1  
Sorry, try alex's code –  Camro Dec 7 '10 at 4:22

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