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I have a problem using variable variables to name my arrays, inside a for loop. This is my code

 <?php
 $which_innerarray = 0;


 for($i=0;$i<10;$i++)
            {
             $a{$which_innerarray} = array(1,2,3,4);
             $which_innerarray++;
            }

 print_r($a1);
 ?>

This is currently throwing up an error : undefined variable a1.

I probably have a syntax problem , but i can't seem to find it. Any help is appreciated.

Thanks,

Richard Madson.

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3 Answers 3

Try:

${"a{$which_innerarray}"} = array(1,2,3,4);

But this looks like code smell. Why don't you use an array instead?

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bingo!!! it worked @One Trick Pony ,,thanks a ton.. I cant accept this as the right answer for another 7 minutes :(,,stack rules.... but I'll do it for sure.. thanks again. –  user1895623 Feb 24 '13 at 15:46

Try it in this way:

 <?php

 $which_innerarray = 0;


 for($i=0;$i<10;$i++)
            {
             ${'a'.$which_innerarray} = array(1,2,3,4);
             $which_innerarray++;
            }

 print_r($a1);
 ?>
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thanks, this works as well and is a bit simpler and cleaner than the earlier answer. problem solved guys, thanks. –  user1895623 Feb 24 '13 at 15:52

Try this code.

$which_innerarray = 0;
$a = Array();

for($i=0;$i<10;$i++)
{
    $a[$which_innerarray] = Array(1,2,3,4);
    $which_innerarray++;
}

print_r($a[1]);
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