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Im not sure what function to search for in regards to this so cant seem to help myself. Seems like an obvious problem really. I have an array, and where I have duplicate keys, I wish to add the values. e.g:

This is a section of my array.

[1] => Array
    (
        [inputAvg] => 21.41 KB
        [outputAvg] => 22.03 KB
        [date] => 2011-08-01
    )

[2] => Array
    (
        [inputAvg] => 182.63 KB
        [outputAvg] => 186.05 KB
        [date] => 2011-08-01
    )

[3] => Array
    (
        [inputAvg] => 182.63 KB
        [outputAvg] => 186.05 KB
        [date] => 2011-08-02
    )

[4] => Array
    (
        [inputAvg] => 4.84 MB
        [outputAvg] => 4.93 MB
        [date] => 2011-08-03
    )

All I wish to do is, say where the date key of the array is the same (e.g. here 2011-08-01) I want to show this date once, but with combined values of the duplicate item....?

e.g

[1] => Array
    (
        [inputAvg] => 204.04 KB
        [outputAvg] => 208.08 KB
        [date] => 2011-08-01
    )


[2] => Array
    (
        [inputAvg] => 182.63 KB
        [outputAvg] => 186.05 KB
        [date] => 2011-08-02
    )

[3] => Array
    (
        [inputAvg] => 4.84 MB
        [outputAvg] => 4.93 MB
        [date] => 2011-08-03
    )
share|improve this question
2  
Combained?? added or concatenated ?? – Prasanth Bendra Feb 19 '13 at 12:49
    
Show sample output – Sankalp Mishra Feb 19 '13 at 12:50
    
sorry. added. ignore the MB KB, but sum of the two values...? – Mr Sorbose Feb 19 '13 at 12:51
1  
Best solution for you could be checking for duplicates right when you add element to array. If the key already exists, it will add the values, if not it will add new key to array. – Kyborek Feb 19 '13 at 12:53
1  
up vote 5 down vote accepted
<?php

$array  = array(Array("inputAvg" => 21.41,"outputAvg" => 22.03,"date" => "2011-08-01"),
                Array("inputAvg" => 182.63,"outputAvg" => 186.05,"date" => "2011-08-01" ),
                Array("inputAvg" => 182.63, "outputAvg" => 186.05,"date" => "2011-08-02")
                );

$res  = array();
foreach($array as $vals){
    if(array_key_exists($vals['date'],$res)){
        $res[$vals['date']]['inputAvg']    += $vals['inputAvg'];
        $res[$vals['date']]['outputAvg']   += $vals['outputAvg'];
        $res[$vals['date']]['date']        = $vals['date'];
    }
    else{
        $res[$vals['date']]  = $vals;
    }
}

echo "<pre>";
print_r($res);

?>

Output :

Array
(
    [2011-08-01] => Array
        (
            [inputAvg] => 204.04
            [outputAvg] => 208.08
            [date] => 2011-08-01
        )

    [2011-08-02] => Array
        (
            [inputAvg] => 182.63
            [outputAvg] => 186.05
            [date] => 2011-08-02
        )

)
share|improve this answer
    
+1 Superb bro..Saw two questions where you figured out great logic today..Amaging..Had tp praise u..I too got to solutions but not as quick as u!! IIt(ian)? – Sankalp Mishra Feb 19 '13 at 13:04
    
@SankalpMishra : Thanks buddy...but not iit (ian) because not tried ;) – Prasanth Bendra Feb 19 '13 at 13:08

Try this one ;

$new = array() ;

foreach ($stats as $traffic){
  $key = $traffic['date'] ;

  if (isset($new[$key])){
    if ($new[$key]['date'] === $traffic['date']){
      $new[$key]['inputAvg'] += $traffic['inputAvg'] ;
      $new[$key]['outputAvg'] += $traffic['outputAvg'] ;
    }
  } else {
    $new[$key] = $traffic ;
  }
}

var_dump($new) ;

Edited TYPO, so it works now.

share|improve this answer

Suppose, $data has all data that you want to process on

$dateArray = array();
foreach($data as $key => $value){
    if(in_array($value['date'], $dateArray)){
        $newArray[$value['date']]['inputAvg'] = $value['inputAvg'] + $newArray[$value['date']]['inputAvg'];
        $newArray[$value['date']]['outputAvg'] = $value['outputAvg'] + $newArray[$value['date']]['outputAvg'];
    }
    else{
        $dateArray[] = $value['date'];
        $newArray[$value['date']] = $value;
    }
}

But remember, that addition will just add your averages and not show KB/MB in the end. You will have to manipulate it.

share|improve this answer

Here is a solution that takes into account KB, MB and GB

Function to get absolute value from KB, MB and GB

function mul($unit) {
  $mul = 1;
  switch($unit) {
    case 'GB': $mul *= 1000;
    case 'MB': $mul *= 1000;
    case 'KB': $mul *= 1000;
  }
  return $mul;
}

Function to make a string from number, divided by G, M or K and add postfix

function demul($val) {
  $units = array('GB','MB','KB');
  $unit = '  ';
  $m = 1000000000;
  for ($i=0 ; $i<3 ; $i++) {
    if ($val >= $m) {
      $val /= $m;
      $unit = $units[$i];
      break;
    }
    $m /= 1000;
  }
  return number_format($val, 2) . ' ' . $unit;
}

Main loop, $arr is the original array ; fill dates array with summed data

$dates = array();
foreach ($arr as $key => $a) {
  $d = $a['date'];
  $i = explode(' ', $a['inputAvg']);
  $o = explode(' ', $a['outputAvg']);
  $in  = $i[0] * mul($i[1]);
  $out = $o[0] * mul($o[1]);

  if ( ! isset($dates[$d])) {
    $dates[$d] = array($in, $out);
  }
  else {
    $dates[$d][0] += $in;
    $dates[$d][1] += $out;
  }
}

Make result array based on original format

$result = array();
$n = 1;
foreach ($dates as $d => $a) {
  $result[$n++] = array('date' => $d, 'inputAvg' => demul($a[0]), 'outputAvg' => demul($a[1]));
}

Print result

print_r($result);

Given the data

$arr = array(
'1' => Array
    (
        'inputAvg' => '21.41 KB',
        'outputAvg' => '22.03 KB',
        'date' => '2011-08-01',
    ),

'2' => Array
    (
        'inputAvg' => '182.63 KB',
        'outputAvg' => '186.05 KB',
        'date' => '2011-08-01',
    ),

'3' => Array
    (
        'inputAvg' => '182.63 KB',
        'outputAvg' => '186.05 KB',
        'date' => '2011-08-02',
    ),

'4' => Array
    (
        'inputAvg' => '4.84 MB',
        'outputAvg' => '4.93 MB',
        'date' => '2011-08-03',
    )
);

It gives the output

Array
(
    [1] => Array
        (
            [date] => 2011-08-01
            [inputAvg] => 204.04 KB
            [outputAvg] => 208.08 KB
        )

    [2] => Array
        (
            [date] => 2011-08-02
            [inputAvg] => 182.63 KB
            [outputAvg] => 186.05 KB
        )

    [3] => Array
        (
            [date] => 2011-08-03
            [inputAvg] => 4.84 MB
            [outputAvg] => 4.93 MB
        )

)
share|improve this answer

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