1

This question already has an answer here:

I have this code that is looking for $array2 in $array1.

The issue that I have is that I need to lowercase both arrays so the in_array matching works and this code operates as expected but $array1 is greater than 20k objects -- is there anyway to do the lowercase without losing the array structure and looping?

$array1 = array(code => 200, status => success,
        array(
        'email' => 'Example1223@sample.com',
        'status' => 'Pending'
        ),
       array(
        'email' => 'example123@sample.com',
        'status' => 'Approved: Printed & Cleared'
        ),
      array(
        'email' => 'example23@sample.com',
        'status' => 'Approved'
        ),
      array(
        'email' => 'Example22@sample.com',
        'status' => 'Approved: Printed & Cleared'
        ),
        );

$yourArray = array();
$array = array();
foreach ($array1 as &$array){

$yourArray[] = array_map('strtolower', $array);

}

echo "<pre>"; print_r($yourArray);

$array2 = array(
        'email' => 'example1223@sample.com',
        'status' => 'Pending'
        );   

$yourArray2 = array_map('strtolower', $array2);         

if(in_array($yourArray2 , $yourArray)) {
echo "match";
} else {
echo "no match";
}

echo "<pre>"; print_r($yourArray2);

marked as duplicate by Machavity php Apr 10 '17 at 16:15

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • note that array_walk and array_walk_recursive can both do this – Machavity Apr 10 '17 at 16:16
0

You can always use preg_grep() function:

preg_grep("/ONe/i", $yourArray2);
  • Note: This can be resource-intensive at 20k elements. – ʰᵈˑ Apr 10 '17 at 16:13
  • More resource-intensive than loop with 20k iterations? :) I don't think so – Saliery Apr 10 '17 at 16:15
  • 1
    Actually, it could be, especially in memory consumption. looping vs grep – ʰᵈˑ Apr 10 '17 at 16:19

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