3

maybe a simple question but I can't figure it out.. I try to put values from an array in a variable, but it doesn't seem to work.

$array = array(0 => 100, "color" => "red");

print_r(array_keys($array));

Outputs:

Array
(
    [0] => 0
    [1] => color
)

Then why can't I say:

print_r(array_keys($array[1]));

So it will output: color

How do I put color in a variable?

* Update: I work in PHP 5.3, unfortunately

print_r(array_keys($array)[1]);

don't work.

8

Because $array[1] is the key 1 of $array. If you use PHP 5.4+ you can do this directely:

print_r(array_keys($array)[1]);

DEMO

Otherwise you have to save it a variable first:

$keys = array_keys($array);
print_r($keys[1]);

DEMO

Manual entry for array deferencing in 5.4+:

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.

  • Damnit beat me. – Marty Dec 17 '13 at 11:18
  • It's a string, so instead of print_r(), you can echo it :) – Amal Murali Dec 17 '13 at 11:20
  • @AmalMurali You're right - this was only to copy OP's way of doing it. :) I feel that the less we change in our answers, the more the OP understands the change. – h2ooooooo Dec 17 '13 at 11:22
  • I work in PHP 5.3, both answers don't seem to work? – Ruub Dec 17 '13 at 11:30
  • 1
    @Ruub Your second piece of code should work perfectly, and if it doesn't you've probably done something wrong somewhere else in your code. As shown here it works fine. If you copy paste that code, it works fine, right? Can you create an example on 3v4l, codepad, etc., where the second example fails with your code? – h2ooooooo Dec 17 '13 at 11:38
0

Did you mean:

print_r(array_keys($array)[1]);
// -----------------------^^^ After array_keys()
0

because of $array[1] is not an array. it has just a string value.

array_keys functions indentify only the arrays, can not the strings key.

If the $array[1] have an array then it will return an array with values of keys.

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