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In php 5, all variable and objects are passed by reference, but i can't get my codes work

My codes is:

$arrayA = array();

$array = $arrayA;
...
if(!in_array(thedata, $array)
    $array[] = thedata;
var_dump($arrayA);

The result is empty, am i missing something simple?

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thanks to all, corrected a big mistake of mine –  Edward Apr 9 '10 at 15:19
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4 Answers

up vote 4 down vote accepted
<?php
    $arrayA = array();
    $arrayB =& $arrayA;
    $arrayB = array(1,2,3);
    var_dump($arrayA);

Read more here:

http://php.net/manual/en/language.types.array.php (Search for Reference)

http://www.php.net/manual/en/language.references.php

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In PHP5 all objects are passed by reference (more or less), not all variables.

$array =& $arrayA;
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Only objects are passed by reference. If you want to make a reference to simple types, you have to use =& for assignment:

php > $var1 = 'xxxxx';
php > $var2 =& $var1;
php > $var1 = 'yyyyy';
php > echo $var2;
yyyyy
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$array =& $arrayA;
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It is $array =& $arrayA; –  Ivo Sabev Apr 9 '10 at 15:08
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