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When:

$person = array('name' => 'bill');

isset($person['jibberish']) evaluates to FALSE.

But:

$person = 'bill';

isset($person['jibberish']) evaluates to TRUE, as $person['jibberish'] returns the first character of string $person.

Is this as intended? This came as a shocker to me today, as I've always used empty($array['key']) without ever including is_array() in my if statements.

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This is a good example of the not-100%-obvious behaviour of PHP string->int type casting. Try $person = 'bill'; var_dump(isset($person['10 green bottles'])); - see php.net/manual/en/language.types.type-juggling.php and php.net/manual/en/… for the key to why you see this behaviour. The thing you need to remember is that you are dealing with C strings underneath, so everything is really just a byte array. –  DaveRandom Apr 22 '13 at 16:21
    
Any string that begins with a numeric will become that number when type cast to int, so (int)'10 green bottles' == 10; // true. If it doesn't start with a numeric, it will be cast to 0. –  fullybaked Apr 22 '13 at 16:28

2 Answers 2

up vote 3 down vote accepted

Because $person is a string, the array-like-index is converted to an int.

(int)'any non-numeric string in the world' == 0

So, you "naturally" get the first character of any string if you use a random, non-numeric string as the index.

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Cause you are printing the undefined index of the string, not array. If you try to print indexes of strings in PHP, you'll have the each character of the string:

$person = 'bill';
$person[0] //b
$person[1] //i
$person[2] //l
$person[3] //l
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