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Hi I'm looking for an algorithm or function to find what group of elements in an array add up to a certain number. There may be more than one, so I wish to return the first good group reading from left to right in the array.

For example, say I have an array of random numbers... $x = array(500, 90, 50, 200, 10, 300, 900) I wish to identify any group of array elements that add up to a given number X, say 1,000.

In this case, elements 0,3,5 of array $x are the first add up to 1,000 (500 + 200 + 300). Elements 1,4,6 also add up to 1,000 (90 + 10 + 900) but not first, so we can ignore them. The function should return a new array with the correct index positions $y = array(0,3,5).

any help appreciated! Thanks :-)

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4  
This is called the subset sum problem and in general it cannot be solved in a reasonable amount of time. Of course for such small inputs you can brute force it. –  Jon Aug 6 '13 at 10:00
    
The problem is that humans can work this out intelligently, and even though you can make the algorithm think like a human for calculations like this, a program will not give up where a human will soon realize that there is no correct combination. In other words, when you have a set of numbers with no solution, any attempt made by a program will effectively be brute force. –  Flosculus Aug 6 '13 at 10:04
    
Is there a maximum? Such as between 1 and 4 numbers, or any collection of elements greater than 1? Also, would you get a match for 10 if the target was 10, or would that be no result? –  SmokeyPHP Aug 6 '13 at 10:10
2  
@Flosculus: "A human will soon realize that there is no correct combination" => and a human will be wrong. Cases where you can solve this problem in your mind are so simple that your phone could have solved them a thousand times in the time it took you to read the numbers. –  Jon Aug 6 '13 at 10:12
1  
@Flosculus: Of course they can stop and think "this is taking too long" if you want them to (random example). In any case this is a completely different subject than the original "a human will realize that there is no correct combination" -- humans are practically useless at this type of work. It would be more accurate to say "a human will realize there is no way they can find a solution except by sheer luck and give up after a few minutes". –  Jon Aug 6 '13 at 10:37

1 Answer 1

up vote 1 down vote accepted

Okay, I may have missed a 'proper' way of doing this, but I have some solutions nonetheless.

Infinite search - attempt 2 (recommended):

function get_parts3($arr,$target)
{
    foreach($arr as $k => $v)
    {
        if($v>$target) continue;
        foreach($arr as $k2 => $v2)
        {
            if($v2>$target) continue;
            if($k2==$k) continue;
            if($v + $v2 == $target)
            {
                return array($k,$k2);
            }
        }
        $tmparr = $arr;
        $tmparr[$k] = $target+1;
        $test = get_parts3($tmparr,$target-$v);
        if(is_array($test))
        {
            return array_merge(array($k),$test);
        }
    }
    return false;
}

Attempted infinite search 1 - could have performance issues on large arrays though.

function get_parts2($arr,$target)
{
    foreach($arr as $k => $v)
    {
        if($v > $target) continue;
        $keys = array_keys($arr);
        for($i=0;$i<25;$i++)
        {
            $sum = $v;
            $parts = array();
            $parts[$k] = $v;
            foreach($keys as $k2)
            {
                if($k2 == $k) continue;
                $v2 = $arr[$k2];
                if($sum+$v2 > $target) continue;
                $sum += $v2;
                $parts[$k2] = $v2;
                if($sum==$target) return array_keys($parts);
            }
            shuffle($keys);
        }
    }
    return false;
}

A finite search (in this case combinations of 2 or 3 numbers):

function get_parts($arr,$target)
{
    foreach($arr as $k => $v)
    {
        if($v>$target) continue;
        foreach($arr as $k2 => $v2)
        {
            if($v2>$target) continue;
            if($k2==$k) continue;
            if($v + $v2 == $target)
            {
                return array($v,$v2);
            }
            foreach($arr as $k3 => $v3)
            {
                if($v3>$target) continue;
                if($k3==$k2 || $k3==$k) continue;
                if($v + $v2 + $v3 == $target)
                {
                    return array($k,$k2,$k3);
                }
            }
        }
    }
    return false;
}
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Cool, the solution get_parts for a finite search of 1 or 2 works and I can use that in my program. thank you, it is a good solution. In get_parts2 I think you will repeat numbers, so I could add some code to try to differentiate them... But nice code... appreciate it :-) –  Conor Ryan Aug 6 '13 at 11:43
    
@ConorRyan No worries, get_parts3 is generally better than get_parts2, but I kept it in there as an alternate solution in case needed. –  SmokeyPHP Aug 6 '13 at 11:45
    
@ConorRyan If this has answered your question, please remember to mark the question as resolved by accepting the answer (click the tick under the vote arrows) –  SmokeyPHP Aug 6 '13 at 11:56

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