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what is this error ?

Parse error: syntax error, unexpected T_VAR in D:\xampp\htdocs\mehdi\application\libraries\phpass-0.1\PasswordHash.php on line 32

code:

$iteration_count_log2 = $params['phpass_hash_strength'];
        $portable_hashes = $params['phpass_hash_portable']; 
    var $itoa64; //line 32
    var $iteration_count_log2;
    var $portable_hashes;
    var $random_state;
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Why, it's a syntax error, of course. –  Jon Martin Aug 2 '11 at 20:10

2 Answers 2

You must not use var to declare a variable : just assign a value to it, when you need it :

$your_variable = 5647;


And if you really want your variables listed beforehand, just assign something that would mean no-value to them, like, for instance, null :

$your_variable = null;


Just so you know : var was used, in PHP 4 (and, as such, is still valid in PHP 5, for that same usage) to declare classes properties.

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Help me understand PHP: Why is var used in some examples that I see? Is it for global variables? –  jp2code Nov 15 '13 at 19:01

Remove 'var' from each of your variables.

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