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Consider the following arrays. They represent the top-5 performing employees for yesterday and today:

$yesterday = array(
   6 => array('name' => 'Tod', 'score' => 9.5),
  12 => array('name' => 'Jim', 'score' => 7.3),
  18 => array('name' => 'Bob', 'score' => 8.4),
   7 => array('name' => 'Jan', 'score' => 6.2),
  20 => array('name' => 'Sam', 'score' => 6.0),
);

$today = array(
   6 => array('name' => 'Tod', 'score' => 9.1),
   9 => array('name' => 'Jef', 'score' => 9.3),
  35 => array('name' => 'Axl', 'score' => 7.6),
   7 => array('name' => 'Jan', 'score' => 6.5),
  41 => array('name' => 'Ted', 'score' => 8.0),
);

I need 3 new arrays compiled from the above: $stay holding employees who were in the top-5 yesterday, and still are today, $gone, holding employees who were in the top-5 yesterday, but are not anymore, and $new, holding newcomers to $todays top-5 list:

// notice that the scores in $stay come from $today, not $yesterday
// also notice that index keys are maintained

$stay = array(
  6 => array('name' => 'Tod', 'score' => 9.1),
  7 => array('name' => 'Jan', 'score' => 6.5)

);

$gone = array(
  12 => array('name' => 'Jim', 'score' => 7.3),
  18 => array('name' => 'Bob', 'score' => 8.4),
  20 => array('name' => 'Sam', 'score' => 6.0)
);

$new = array(
   9 => array('name' => 'Jef', 'score' => 9.3),
  35 => array('name' => 'Axl', 'score' => 7.6),
  41 => array('name' => 'Ted', 'score' => 8.0)
);

I have no clue on how to build the logic here. I started with a loop, but didn't get far. I believe it should be something like this. Could you help me get this right?

for ($i = 0; $i < count($yesterday); $i++) {
  // I'm comparing key numbers, but not key values
  // how do I compare key values?
  if (in_array($yesterday[$i], $today) {
    // add to $stay array
  }
  else {
    // add to $gone array
  }
}

for ($i = 0; $i < count($today); $i++) {
  if (!in_array($today[$i], $yesterday) {
    // add to $new array
  }
}

P.S. I don't know if this is helpfull, but $yesterday and $today are always of equal length (in this case, 5 items, but other scenarios are possible in which both arrays hold 7 or 10 items for instance). The combined items of $stay and $new logically are always equal to the number of items in either $yesterday or $today :-)

share|improve this question
up vote 1 down vote accepted

This can be accomplished using just a few of PHP's many powerful array functions:

$stay = array_intersect_assoc($yesterday, $today);
$gone = array_diff_assoc($yesterday, $today);
$new = array_diff_assoc($today, $yesterday);
share|improve this answer
    
This comment is intended for the answer by @peter but I lack sufficient rep; it's important to note that array_intersect() and array_diff() are insufficient in the scope of this question as they do not correctly compute associative arrays. – Brandon Smith Aug 30 '12 at 22:08

http://www.php.net/manual/es/function.array-intersect.php
http://www.php.net/manual/es/function.array-diff.php

$c = array_intersect($a, $b);
$d = array_diff($a, $b);
$e = array_diff($b, $a);
share|improve this answer

I think this should work but isnt the fastest method to do this i think.

$stay = array();
$gone = array();
$new = array();
$found = false;
foreach($yesterday as $yKey)
{         
  $found = false;
  foreach($today as $tKey)
  {
    if($tKey['name'] == $yKey['name'])
    {
      $found = true;
      $stay[]['name'] = $tKey['name'];  
      break;
    }  
    else
    {
      $found = false;
    }
  }
  if($found == false)
    {
      $gone[]['name'] = $yKey['name'];
    }  
}

foreach($today as $tKey)
{
  $found = false;
  foreach($yesterday as $yKey){
    if($yKey['name'] == $tKey['name'])
    {
      $found = true;
      break;
    }  
    else{
      $found = false;
    }
  }
  if($found == false)
    {
      $gone[]['name'] = $tKey['name'];
    }
}
share|improve this answer

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