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Say we have this array of strings:

$arrString = ["1", "2", "3"];

One traditional way of converting the values to integers are like so:

foreach ($arrString as $key => $value)
    $arrString[$key] = (int) $arrString[$key];

echo var_dump($arrString);

This outputs:

array(3) { [0]=> int(1) [1]=> int(2) [2]=> int(3) }

Much expected. However, I believe using a reference is a much quicker way of getting the same work done:

foreach ($arrString as &$strValue)
    $strValue = (int) $strValue;

 echo var_dump($arrString);

Well guess what it outputs?

array(3) { [0]=> int(1) [1]=> int(2) [2]=> &int(3) }

Which is to say it assigned the last value as a reference to an int. This always happens to the last element when using a reference in the loop (even when there's just one element), and it also happens irrespectively if I use the (int) cast or PHP's settype- and intval functions.

It beats me; Why is this happening? And should I really care?

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fyi- array_walk($arr, 'intval'); – goat May 28 '12 at 16:44
@chris - neat and efficient – Mark Baker May 28 '12 at 16:46

1 Answer 1

up vote 3 down vote accepted

You should care, and it's been explained many times before here on SO (and there's an explicit warning in the PHP documentation)



after the loop

See here for an explanation



with quote:


Reference of a $value and the last array element remain even after the foreach loop. It is recommended to destroy it by unset().

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Do you have a source? I thought I googled this thoroughly. – Martin Andersson May 28 '12 at 16:40

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