This is an interesting situation which I created a working function for, but wondering if I just anyone had any simpler methods for this.

I have the following multidimensional array:

$foo = array(
    [0] => array(
        'keys' => array( 
            'key1' => 1,
            'key2' => a,
            'key3' => 123
        ),
       'values' => array(
            //goodies in here
        )
    )
    [1] => array(
        'keys' => array( 
            'key1' => 1,
            'key2' => b,
            'key3' => 456
        ),
       'values' => array(
            //goodies in here
        )
    )
)

What I wanted, was to transform this into a multidimensional array nested based on the values from the keys array, the output I was looking for is:

$bar = array(
    [1] => array(
        [a] => array(
            [123] => array( //values array from above )
        ),
        [b] => array(
            [456] => array( //values array from above )
        )
    )
)

The keys can always be nested based on their position in the keys array, but the keys themselve are not always the same, keys handles a user defined grouping, so the order and values can change. I also didn't want duplicate keys.

array_merge failed me because in a lot of cases, the array keys are actually numeric ids. So, this function works - but I'm wondering if I made myself a new pair of gloves.

   protected function convertAssociativeToMulti( &$output, $keys, $value )
   {
      $temp = array();
      $v = array_values( $keys );
      $s = sizeof( $v );
      for( $x = 0; $x < $s; $x++ )
      {
         $k = $v[ $x ];
         if ( $x == 0 )
         {
            if ( !array_key_exists( $k, $output ) )
               $output[ $k ] = array();
            $temp =& $output[ $k ];
         }
         if ( $x && ( $x + 1 ) !== $s )
         {
            if( !array_key_exists( $k, $temp ) )
               $temp[ $k ] = array();
            $temp =& $temp[$k];
         }
         if ( ( $x + 1 ) == $s )
            $temp[$k] = $value;
      }
   }

   $baz = array();
   foreach( $foo as $bar )
   {
      $this->convertAssociativeToMulti( $baz, $bar['keys'], $bar['values'] );
   }

So, how do you do this more simply / refactor what I have?

  • 1
    +1 for the link about The Complicator's Gloves! – cheesemacfly Jan 25 '13 at 2:13
  • Take a look at my answer in this question, I think they're similar. – Barmar Jan 25 '13 at 2:30
  • @Barmar - similar. I think that solution lacks maintaining the proper hierarchy for my use case. Since I loop over multiple keys arrays, they all get nested below the last set with your code. – kmfk Jan 25 '13 at 2:47
  • Yeah, that explains why my code is so much shorter. It's just dealing with one entry, not an array like yours. – Barmar Jan 25 '13 at 2:48
up vote 3 down vote accepted

This is a bit more concise (See it in action here):

$bar=array();
foreach($foo as $item)
{
    $out=&$bar;
    foreach($item['keys'] as $key)
    {
        if(!isset($out[$key])) $out[$key]=array();
        $out=&$out[$key];
    }
    foreach($item['values'] as $k=>$v) $out[$k]=$v;
//    $out=array_merge($out,$item['values']); -- edit - fixed array_merge
}
var_dump($bar);
  • interesting. tried array_merge earlier because I assumed it would simplify this a lot. thought I ran into an issue of numeric keys being changed... per the docs: Values in the input array with numeric keys will be renumbered with incrementing keys starting from zero in the result array. – kmfk Jan 25 '13 at 6:21
  • nevermind, I get it. thanks, tested it with my code. Had to drop the array_merge anyway, my example showed values being array, its actually an object - either way, much more concise. – kmfk Jan 25 '13 at 6:32
  • Oops, I forgot about the array_merge. It's a simple foreach to replace it anyway. – Jon Hulka Jan 25 '13 at 6:34
  • actually, your array_merge was fine based on the info I gave in the question, because you were just merging values into the empty array. when I tried it earlier, I was actually trying to merge similar keys. thanks again – kmfk Jan 25 '13 at 6:35

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.