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let say I have an array of this values:

$arr = array(190, 2215, 2, 61);

after I run my code with 694 loops, I got this final values:

Array
(
    [0] => 696
    [1] => 696
    [2] => 696
    [3] => 696
)

how can I make the process faster and much better?? I only can increase or decrease the value by 1

Below are my codes.

<?php 
    echo '<pre>';
    $arr = array(190, 2215, 2, 61);
    sort($arr);
    print_r($arr);

    $arrLength = count($arr);
    $counter = 0;

    loop:
    $counter++;

    for($i=0; $i<$arrLength; $i++){
        if($arr[$i] < $arr[$arrLength-1] && $arr[$arrLength-1] != $arr[$arrLength-2]) {
            $arr[$i]++;
            $arr[$arrLength-1]--;
        }else if($arr[$i] < $arr[$arrLength-1] && $arr[$arrLength-1] == $arr[$arrLength-2]) {
            $arr[$i]++;
        }
     }

    if($arr[0] != $arr[$arrLength-1]) goto loop;

    print_r($arr);
    print_r($counter);
?>
share|improve this question
    
Sounds like homework. Is it? If so, you'll get more useful answers if you tag it as such. –  ghoti Jan 30 '12 at 5:49
5  
Seeing a goto instead of a very obvious do...while statement makes me very afraid to ask: What in the world are you trying to achieve? –  Niet the Dark Absol Jan 30 '12 at 5:51
    
@Kolink: Performance, duh, everybody knows goto gets so much more done in so little time :P –  BoltClock Jan 30 '12 at 5:55
    
@ghoti no its not :) –  skycrew Jan 30 '12 at 5:56
    
@BoltClock thanks :) I need to achieve worst case performance by O(n2) –  skycrew Jan 30 '12 at 5:58

1 Answer 1

up vote 3 down vote accepted

Your code just finds a weighted average between the two largest values in an array, and then sets everything to it (Second largest element has weight of the number of elements - 1, the largest element has weight 1). You can do this much more easily and faster like this:

<?php 
    echo '<pre>';
    $arr = array(190, 2215, 2, 61);
    sort($arr);
    print_r($arr);

    $arrLength = count($arr);

    // Find weighted average of second largest element and largest element in array:
    $avg = floor(($arr[$arrLength - 2] * ($arrLength - 1) + $arr[$arrLength - 1])/$arrLength);

    // Only need this line if you need the end value of counter from your code
    // $counter = $avg - $arr[0]; // (964 in this example)
    $arr = array_fill(0, $arrLength, $avg);

    print_r($arr);

?>

Note: if all you need is the number (696) then you don't need the array_fill line. Just use the $avg variable for whatever you need it for later.

share|improve this answer
    
+1 OP needs O(n^2), this is O(1), couldn't be simpler. –  nickb Jan 30 '12 at 6:05
    
@PaulP.R.O. thanks for the code but how about I really need to increase or decrease each of the array value by 1 to get the number (696) ? –  skycrew Jan 30 '12 at 6:06
    
@skycrew I'm not sure what you mean. If you can only decrease or increase by 1 then use a loop. But this way you can end up with the same result with no loop. If you need to know how many iterations your code would've made then uncomment the $counter = $avg - $arr[0]; line. Then you can add print_r($counter); to the end to get the exact same output as your code above with no loop. –  Paulpro Jan 30 '12 at 6:14
    
@PaulP.R.O. in that case I accept your answer :) but I still can vote it. heh anyway thanks for the help! –  skycrew Jan 30 '12 at 6:23
    
@skycrew And if you're really restricted to adding and subtracting 1 for some reason, then you can change $i<$arrLength; to $i < $arrLength - 1; to shorten the number of iterations in that for loop by one. –  Paulpro Jan 30 '12 at 6:23

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