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I have an array declared above the beginning of a for loop as: $array = array();. Now, in the for loop I start inserting values into it. At some point I make one of its index as another array as $array[$j]=array(); And insert some values like, $array[$j][$l] = id; and so on.

Now, when I use print_r ($array); inside the loop I get the expected value of the array. But outside the loop this newly created array (2-D) is getting lost and I am getting only a 1-D array as an output.

Can someone please tell me where the problem could lie?

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Can we see your code? –  ceejayoz Oct 2 '09 at 20:23
5  
It's likely you're using the same value for $j and thus overriding parts of your array (if I'm understanding the problem correctly). –  strager Oct 2 '09 at 20:25
    
@Strager: Thanks a lot for pointing out the problem. I was not able to find it, may be because i never thought that way. Thanks again! :) –  mkamthan Oct 2 '09 at 21:06
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1 Answer 1

up vote 4 down vote accepted

The following code works properly. Perhaps you are switching your variables as strager suggests.

<?php
$array = array();

for ($i = 0; $i < 10; $i+=1) {
    if ($i == 5) {
        $array[$i] = array('value 1', 'value 2');
    } else {
        $array[$i] = $i;
    }
}

print_r($array);
?>
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