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Would running array_diff_assoc() twice on an array give me all non-unique entries?

$array3 = array_diff_assoc($array1, $array2);
$array4 = array_diff_assoc($array1, $array3);
var_dump($array4);
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What are the contents of array1 and array2? –  Explosion Pills Jul 31 '11 at 3:48
    
Or you can always call array_unique. –  Dani Jul 31 '11 at 3:49
    
AHHHggg! I don't know who to give the answer to! –  千里ちゃん Aug 1 '11 at 1:45
    
@Dani, array_unique on the result of array_diff_assoc(), right? Do you know what's faster, off hand? –  千里ちゃん Aug 16 '11 at 11:09

2 Answers 2

up vote 6 down vote accepted

Given:

  • A the set of entries in $array1, and
  • B the set of entries in $array2,

B would be composed of:

  • B', all the entries in B that are in A, and
  • B'' all the entries in B that are not in A.

$array3, diff_assoc_array($array1, $array2), would be the operation A \ B, which would reduces as follows:

  • (A \ B') ∩ (A \ B'')
  • (A ∩ ¬B') ∩ A
  • A ∩ ¬B'.

$array4, diff_assoc_array($array1, $array3), would be the operation A \ (A ∩ ¬B'), which reduces as follows:

  • A ∩ ¬(A ∩ ¬B')
  • A ∩ (¬A ∪ B')
  • A ∩ B

Therefore yes, the final result would be the items common to both arrays.

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how we can't give a +1 here –  dynamic Jul 31 '11 at 11:06
    
The complement operator is \‍ and not /. –  Gumbo Jul 31 '11 at 11:10
1  
So it is​.​.​.​ –  Ignacio Vazquez-Abrams Jul 31 '11 at 11:14
    
hard to compete with that... It even teaches math. –  千里ちゃん Aug 1 '11 at 1:44
    
@Gumbo why don't you edit it? –  千里ちゃん Aug 16 '11 at 10:38

Solved...

<?php
  $array1 = array(0, 1, 2);
  $array2 = array("00", "01", 2);
  $array3 = array_diff_assoc($array1, $array2);
  $array4 = array_diff_assoc($array1, $array3);
  var_dump($array3);
  echo "<br><br>";
  var_dump($array4);
?>
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