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For the life of me, I can't understand this godforsaken language. This:

$x = explode(' ', 'a b c');
echo $x[0];

works just fine. But:

echo explode(' ', 'a b c')[0];

returns an error. What gives?

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echo current(explode(' ', 'a b c')); – biakaveron Mar 24 '11 at 10:43
@biakaveron this won't work for [1] :) – sharpner Mar 24 '11 at 10:44
Yep, but the question is about getting first element :p – biakaveron Mar 24 '11 at 10:47
+1 biakaveron: I have used that little trick before, but not many people know about the current() function – AntonioCS Mar 24 '11 at 10:50
@biakaveron, the question is about why it gives an error. – Pacerier Jul 5 '13 at 19:18

3 Answers 3

up vote 2 down vote accepted

That syntax isn't supported by the PHP parser, yet. It is called array dereferencing and has been added in the PHP trunk already.

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Funny! So PHP parser and trunk developers are out of sync! PHP Parser team had better move fastly! – Hossein Mar 24 '11 at 10:48
Not quite true, I believe it is added to the trunk for the new PHP version which can be 5.4 or 6. – pderaaij Mar 24 '11 at 11:00

It is simply a syntax error, you can use the array brackets [] only on variables in PHP.


echo $x[0];
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You can do that in PHP 5.4... it's time to upgrade.

Per the manual:

As of PHP 5.4 it is possible to array dereference the result of a function or method call directly. Before it was only possible using a temporary variable.

As of PHP 5.5 it is possible to array dereference an array literal.

function getArray() {
    return array(1, 2, 3);

// on PHP 5.4
$secondElement = getArray()[1];

// previously
$tmp = getArray();
$secondElement = $tmp[1];

// or
list(, $secondElement) = getArray();
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