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I have array(A, B, C, D).

I choose 2 letters from above 4 letters in 6 combinations using combination formula

n! / r! (n-r)!

array(A, B), array(A, C), array(A, D), array(B, C), array(B, D), array(C, D)

How can I find combinations of groups of 2 or 3 or n (should be dynamic) which do not have letters in common. So I am expecting result to be below combinations for group of 2,

array(A, B), array(C, D)

array(A, C), array(B, D),

array(A, D), array(B, C),

This is just an example but i want the algorithm should work for large number of arrays (I have more than 35000 arrays). I want to find group of 2 or 3 or n (should be dynamic), each group should have arrays which do not have elements in common (all keys should be different, not a single elements should be repeated).

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1 Answer 1

You don't say anything about how the sets are represented, so I use arrays for that purpose.

// The base set
$baseSet = array('A', 'B', 'C', 'D');

// Build the subsets
$subSets = array();
for ($i = 0; $i < 3; $i++) {
    for ($j = $i+1; $j< 4; $j++) {
        $subSets[] = array($baseSet[$i], $baseSet[$j]);
    }
}

With that, the solution is straight forward:

foreach ($subSets as $subSet) {
    $complement = array_diff($baseSet, $subSet);
    printf("{%s, %s} - {$s, %s}\n",
        $baseSet[0], $baseSet[1],
        $complement[0], $complement[1]
    );
}

In general, PHP offers a lot of set related functions for arrays.

If you just want to compare two subsets, use array_intersect():

$common = array_intersect($subSet1, $subSet2);
if (empty($common)) {
    echo 'The subsets are distinct.';
} else {
    echo 'The subsets have these elements in common: ' . implode(', ', $common);
}
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It works fine for small array but is there any way to handle large array ? I have array of size 9845. I want to find out unique combinations. –  vishal Apr 17 '13 at 11:31
    
Added a comparision example to my answer. –  nibra Apr 17 '13 at 11:43
    
It works for smaller number of array but when we have large number of arrays and having more array elements then it does not work. –  vishal Apr 18 '13 at 16:31
    
'Does not work' means ...? The comparision I suggested takes two out of any number of arrays. –  nibra Apr 19 '13 at 16:14
    
Logic is correct, but nested for loops goes take long time to execute for huge number of combinations. –  vishal Apr 19 '13 at 16:50

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