2

Given an associated array, I would like to remove all elements except those who are in a second array. For instance, consider the following. Yes, I could loop over either of the arrays and accomplish this, however, I have to believe there is a cleaner way. Thanks

<?php
$array1 = array('a'=>'a','b'=>'b','c'=>'c','d' =>'d','e' =>'e');
$array2 = array('a','c','e');

//Desire array('a'=>'a','c'=>'c','e' =>'e');

//This obviously doesn't work, but am thinking there might be something similar
var_dump(array_intersect_key($array1, $array2));

?>
6
var_dump(array_intersect_key($array1, array_flip($array2)));

Almost there. You need to flip the last array

  • Ah ha. Perfect. Thanks – user1032531 Oct 22 '14 at 17:46
  • Accept the answer if it helps – exussum Oct 22 '14 at 18:50
2

Here's one way using array_filter(). It uses a callback to see if the key is in the array of valid keys. If so, the callback returns true. Notice the flag ARRAY_FILTER_USE_KEY which tells array_filter() to pass the key to the callback instead of the value.

$array = array_filter($array1, function($key) use ($array2) {
    return in_array($key, $array2);
}, ARRAY_FILTER_USE_KEY);

Edit: This only works in PHP 5.6+ as the third parameter to array_filter() in a new addition to the language.

  • John, Is there any advantage using this approach over Exussum's? It is longer, but maybe quicker. I'll do a quick speed check, but usually feel a bit of speed is not worth slightly more complicated code. – user1032531 Oct 22 '14 at 17:47
  • Their solution is perfectly fine. As long as it make sense to you that's what really matters as you're the one who has to maintain the code. – John Conde Oct 22 '14 at 17:48
  • Thanks John. I will use the other solution, but I am messing with yours so I better understand how it works. When using it, I get Use of undefined constant ARRAY_FILTER_USE_KEY. I am using PHP 5.5.14. Why do you think the constant is not defined? – user1032531 Oct 22 '14 at 17:58
  • That's kind of odd. My code isn't much different than an example in the manual. I also don't think that third flag is a recent addition to the function. – John Conde Oct 22 '14 at 18:05
  • 1
    Ahh. My bad. This only works in PHP 5.^+ as that third parameter is indeed a new feature. – John Conde Oct 22 '14 at 18:11

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