Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

in php, i often need to map a variable using an array ... but i can not seem to be able to do this in a one liner. c.f. example:

// the following results in an error:
echo array('a','b','c')[$key];

// this works, using an unnecessary variable:
$variable = array('a','b','c');
echo $variable[$key];

this is a minor problem, but it keeps bugging every once in a while ... i don't like the fact, that i use a variable for nothing ;)

share|improve this question
Works as of PHP v5.4, illegal syntax in PHP <= v5.3 – Jan 15 '14 at 20:56

7 Answers 7

up vote 15 down vote accepted

I wouldn't bother about that extra variable, really. If you want, though, you could also remove it from memory after you've used it:

$variable = array('a','b','c');
echo $variable[$key];

Or, you could write a small function:

function indexonce(&$ar, $index) {
  return $ar[$index];

and call this with:

$something = indexonce(array('a', 'b', 'c'), 2);

The array should be destroyed automatically now.

share|improve this answer
@onnodb, Strict Standards: Only variables should be passed by reference for your function indexonce. Why do you add the & reference? – Pacerier Dec 9 '14 at 11:51

The technical answer is that the Grammar of the PHP language only allows subscript notation on the end of variable expressions and not expressions in general, which is how it works in most other languages. I've always viewed it as a deficiency in the language, because it is possible to have a grammar that resolves subscripts against any expression unambiguously. It could be the case, however, that they're using an inflexible parser generator or they simply don't want to break some sort of backwards compatibility.

Here are a couple more examples of invalid subscripts on valid expressions:

$x = array(1,2,3);
print ($x)[1]; //illegal, on a parenthetical expression, not a variable exp.

function ret($foo) { return $foo; }
echo ret($x)[1]; // illegal, on a call expression, not a variable exp.
share|improve this answer
There was a change proposal at least for the second syntax, but it was rejected: – Max May 26 '10 at 11:54
Status is now changed to accepted – michielvoo Sep 20 '10 at 19:53
This answer is no longer accurate. As of 5.5, PHP supports constant/array/string dereference – Mbrevda Nov 25 '12 at 11:01
@John, Why did you say it'll "break some sort of backwards compatibility"? They did introduced it in 5.4 and so, what kind of backwards compatibility issues are there? – Pacerier Dec 9 '14 at 11:36

This is called array dereferencing. It has been added in php 5.4.

update[2012-11-25]: as of PHP 5.5, dereferencing has been added to contants/strings as well as arrays

share|improve this answer

This might not be directly related.. But I came to this post finding solution to this specific problem.

I got a result from a function in the following form.

    [School] => Array
                [parent_id] => 9ce8e78a-f4cc-ff64-8de0-4d9c1819a56a

what i wanted was the parent_id value "9ce8e78a-f4cc-ff64-8de0-4d9c1819a56a". I used the function like this and got it.

array_pop( array_pop( the_function_which_returned_the_above_array() ) )

So, It was done in one line :) Hope It would be helpful to somebody.

share|improve this answer
This only works on the last value, and you will be removing the value from the original array. – Pacerier Dec 9 '14 at 11:37
function doSomething()
    return $somearray;

echo doSomething()->get(1)->getOtherPropertyIfThisIsAnObject();
share|improve this answer
How could you do get(1) on an array? Fatal error: Call to a member function get() on a non-object in file.php on line 21 – Pacerier Dec 9 '14 at 11:40

actually, there is an elegant solution:) The following will assign the 3rd element of the array returned by myfunc to $myvar:

$myvar = array_shift(array_splice(myfunc(),2));
share|improve this answer
Clever? yes! Elegant? no. – Tom Auger Dec 9 '10 at 0:03

Or something like this, if you need the array value in a variable

$variable = array('a','b','c');
$variable = $variable[$key];
share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.