Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have two 2D arrays. They both contain id and other, not so-related, stuff. My job is to merge those two arrays together if id's match!

This is how they look:

array(3) {
  [0]=>
  array(3) {
    ["id"]=>
    string(3) "161"
    ["x"]=>
    string(1) "foo"
    ["y"]=>
    string(1) "bar"
    }
  }
  [1]=>
  array(3) {
    ["id"]=>
    string(3) "164"
    ["x"]=>
    string(1) "foo"
    ["y"]=>
    string(1) "bar"
    }
  [2]=>
  array(3) {
    ["id"]=>
    string(3) "168"
    ["x"]=>
    string(1) "foo"
    ["y"]=>
    string(1) "bar"
    }
}

array(2) {
  [0]=>
  array(3) {
    ["id"]=>
    string(3) "161"
    ["z"]=>
    string(1) "baz"
  }
  [1]=>
  array(3) {
    ["id"]=>
    string(3) "164"
    ["z"]=>
    string(1) "baz"
}

And this is how result should look:

array(3) {
  [0]=>
  array(3) {
    ["id"]=>
    string(3) "161"
    ["x"]=>
    string(1) "foo"
    ["y"]=>
    string(1) "bar"
    ["z"]=>
    string(1) "baz"
    }
  }
  [1]=>
  array(3) {
    ["id"]=>
    string(3) "164"
    ["x"]=>
    string(1) "foo"
    ["y"]=>
    string(1) "bar"
    ["z"]=>
    string(1) "baz"
    }
  [2]=>
  array(3) {
    ["id"]=>
    string(3) "168"
    ["x"]=>
    string(1) "foo"
    ["y"]=>
    string(1) "bar"
    }
}

And this is what I have so far. Of course, it doesn't work.

foreach ($rated_items as $item) {

    foreach ($posts as $post) {

        if ($post['id'] == $item['id']) {

            $posts = array_merge($posts, $item); // Doesn't work at all.

        }

    }

}

The problem is that I don't know how to merge current $post to current $item and then, both of them, add to $posts array without getting duplicates.

Thanks in an advice!

share|improve this question
add comment

4 Answers

up vote 2 down vote accepted

I don't know is this a bad tone, but I resolved my problem myself. :)

$i = 0;
foreach ($posts as $post) {

    $posts[$i] = $post;

    foreach ($rated_items as $item) {

        if ($post['id'] == $item['id']) {

            $posts[$i] += $item;

        }

    }

    ++$i;

}

Edit:

Even better way...

foreach ($posts as $key => $post) {

    if (isset($rated_items[$key])) {

        $posts[$key] += $rated_items[$key];

    }

}
share|improve this answer
    
You don't need to use $i, you can use: foreach($posts as $key => &$post) instead. Also as recommendation use references (more efficient) like in: $posts[$i] =& $post; –  lepe Aug 22 '11 at 6:58
    
Heh, thanks. :) –  daGrevis Aug 22 '11 at 7:03
add comment

One way to achieve it is if you first re-index your arrays, in a way that will look like:

array(3) {
  [161]=>
  array(3) {
    ["id"]=>
    string(3) "161"
    ["x"]=>
    string(1) "foo"
    ["y"]=>
    string(1) "bar"
    }
  }
  [164]=>
  array(3) {
    ["id"]=>
    string(3) "164"
    ["x"]=>
    string(1) "foo"
    ["y"]=>
    string(1) "bar"
    }
  [168]=>
  array(3) {
    ["id"]=>
    string(3) "168"
    ["x"]=>
    string(1) "foo"
    ["y"]=>
    string(1) "bar"
    }
}

Basically you will set as key of each array, your "id" value. Then you can array_merge() them without a problem.

I hope it helps you.

share|improve this answer
add comment

this should work:

$newArray = array();
foreach($array as $key => $arr){
    if(@$array2[$key]['id'] == $arr['id']){
        $newArray[] = array_merge($arr, $array2[$key]);
    } else {
        $newArray[] = $arr;
    }
}
share|improve this answer
add comment
$tmp = array_merge($posts , $rated_items);
$final = array();
foreach($tmp as $v){
    foreach($v as $k => $va){
        $final[$v['id']][$k] = $va; 
    }
}

or

$tmp = array_merge($posts , $rated_items);
$final = array();
foreach($tmp as $v){
    if($final[$v['id']]){
        $final[$v['id']] = array_merge($final[$v['id']], $v);
    }else{
        $final[$v['id']] = $v;
    }
}
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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