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I have a array called $A which contains only non zero positive numbers.

Now I need to find any number of distinct consecutive subarrays that have a given sum.

I will explain with example

$A = array(1,2,3,4,5);

and the sum I am looking for is 5.

Then there are (2, 3) and (5).

I tried searching and got a python code. I've translated it to PHP below but it refuses to work

$s = 0;
for($i = 0; $i < count($A); $i++){
     for($j=$i; $j < count($A); $j++){
         $s = $s + $A[$j];
         if($s == $sum) {
             echo "[" . $i . " " . $j . "]";
         }
     }
}

Please help.

share|improve this question
6  
homeworks? :))) – Marco Demaio Mar 15 '11 at 12:33
1  
What is $B? And when will $j < count($B) be true? – jensgram Mar 15 '11 at 12:33
1  
@thephpdeveloper "distinct consecutive subarrays" - but I guess that it depends on interpretation :) – jensgram Mar 15 '11 at 12:35
2  
I don't understand what is $B ? – guillaumepotier Mar 15 '11 at 12:35
1  
He's searching consecutive sums. So no (1 4). – Alin Purcaru Mar 15 '11 at 12:37
up vote 1 down vote accepted

This will work :

$A = array(1, 2, 3, 4, 5);
$size = count($A);
$sum = 5;
$solution = array();
for($i = 0; $i < $size; $i++) {
    $tempsum = 0;
    for($j=$i; $j < $size && $tempsum < $sum; $j++) {
        $tempsum += $A[$j];
        if($tempsum === $sum) {
            $solution[] = array_slice($A, $i, $j - $i + 1);
        }
    }
}

var_dump($solution);

As for your code, there's several mistake in it :

  1. You must reinitialize $s each time in the loop.
  2. The array $B probably doesn't exist (second loop stop condition).
  3. It won't show a proper result when the length of the subarray is greater than 2.
  4. There's no need the second loop go to the end, as soon as the temporary sum is greater than the searched one, we can stop.
share|improve this answer
    
Thank you very much. – Chen Mar 15 '11 at 13:31
  • count($A), you have no $B
  • $s = 0; inside the first loop
  • don't forget that $i and $j are indexes and they start at 0
  • don't forget to give a value to $sum before you start searching
  • if($s > $sum) you may want to continue; from the second loop

Good luck,
Alin

share|improve this answer
1  
+1 for good pointers instead of an undocumented solution. – Ignacio Mar 15 '11 at 12:50

You need to initialize $s to 0 at the start of the inner loop.

for($i = 0; $i < count($A); $i++){
    $s = 0;  // CHANGE HERE.
     for($j=$i; $j < count($A); $j++){
         $s = $s + $A[$j];
         if($s == $sum) {
             echo "[" . $i . " " . $j . "]";
         }
     }
}
share|improve this answer
    
this should be a comment. – RobertPitt Mar 15 '11 at 12:40

This would work

<?php
    $a = array(1,2,3,4,5);

    $l = sizeof($a);

    for($i=0; $i<$l; $i++)
    {
        for($j=$i+1; $j<$l; $j++)
        {
            if($a[$i]+$a[$j] == 5)
                echo "( ".$a[$i]." , ".$a[$j]." ) <br/>";
        }
        if($a[$i]==5)
            echo "( ".$a[$i]." )<br/>";
    }
    ?>
share|improve this answer
    
This will give wrong results in many cases. It won't return subarrays longer than 2 element. It will return [1, 4] which is not consecutive. And you can easily avoid the last part of the loop which is totally redundant. – krtek Mar 15 '11 at 13:09
$a = array(1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11); // the array to search in
$b = array(); // the resulting array
$sum = 9; // the sum to search for

$w = $a; // $w is the working array which we may modify
$n = count($w); // number of elements in source array
for($i = 0; $i < $n; $i++){
    $x = 0;
    $t = array();
    if($w[$i] == $sum){
        $b[] = array($w[$i]);
    }
    if($w[$i] >= $sum){
        break;
    }
    for($j = $i; $j < $n; $j++){
        $x += $w[$j];
        $t[] = $w[$j];
        if($x == $sum){
            $b[] = $t;
        }
        if($x >= $sum){
            break; // already found the array, continue search
        }
    }
}

$b will be:

array(3) {
  [0]=>
  array(3) {
    [0]=>
    int(2)
    [1]=>
    int(3)
    [2]=>
    int(4)
  }
  [1]=>
  array(2) {
    [0]=>
    int(4)
    [1]=>
    int(5)
  }
  [2]=>
  array(1) {
    [0]=>
    int(9)
  }
}
share|improve this answer
    
When you're searching for a subarray, you can stop as soon as $x > $sum. And sorting is in my opinion wrong since we're looking for consecutive subarrays of the array, sorting will potentially change the sequence. – krtek Mar 15 '11 at 13:05
    
Well, I did stop the search when ($x == $sum). – mauris Mar 15 '11 at 13:31
    
yeah, but this isn't enough, $x can "jump over" $sum and then you will do the entire loop for nothing, since $x is already greater than $sum. – krtek Mar 15 '11 at 13:37

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