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foreach((array)$arr['subarr'] as &$foo)
 ....

...doesn't not work. It throws a parse error.

Why?

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Could you provide the parse error? –  TJHeuvel Nov 7 '11 at 14:32
    
Parse error: parse error in ... –  Alex Nov 7 '11 at 14:33
    
if I remove the reference it works. but i need the reference –  Alex Nov 7 '11 at 14:33
    
For what exactly the cast is necessary? –  DanielB Nov 7 '11 at 14:34
    
I need to make sure $arr['sub'] is really an array, because sometimes is false or '' –  Alex Nov 7 '11 at 14:35
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4 Answers

up vote 2 down vote accepted

You cannot cast to array and at the same time use the items as a reference.

What happens to $foo it it really isn't an array?

The casting only applies to the loop.

$arr['subarr'] = array('one', 'two');

// make sure we have an array
if (!is_array($arr['subarr'])) {
    $arr['subarr'] = array($arr['subarr']);
}

foreach($arr['subarr'] as &$foo) {
    print($foo);
}
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Why?

This might shed some light into it, however I'm not really sure if this is the case. At least it makes some sense:

If you use &$foo you want to alias each value of the iteration. But as you cast the array, it does not exists as a value, PHP can't create an alias to it (or at least this does not make sense).

Instead:

foreach ((array)$arr['subarr'] as &$foo)

do this, which works and might be what you're looking for:

$subarray = (array) $arr['subarr'];
foreach ($subarray as &$foo)

or

$arr['subarr'] = (array) $arr['subarr'];
foreach ($arr['subarr'] as &$foo)
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What is wrong with:

foreach($arr['key'] as $foo){}

Or are you aiming for:

foreach($arr as $key => $foo)

where $arr is the array, $key is the index, and $foo is the value?

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If you want to check that $arr['subarr'] is an array and then skip the block of code if it is not then you could use this -

if(is_array($arr['subarr'])) :
    foreach($arr['subarr'] as &$foo) :
        {Your code here}
    endforeach;
endif;
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Is endforeach(); correct? –  PeeHaa Nov 7 '11 at 20:37
    
or endif without a semi colon? –  PeeHaa Nov 7 '11 at 20:42
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