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i'm trying to use json_decode to combine a few json objects.. i need to retrieve database values based on album id,. but i couldn't it,.

can anyone tell me where i ve committed mistake?

$album_ids_id = array("album_ids"=>array(2,4,5));
// $album_ids = $_REQUEST['alb_id'];

$album_ids = json_encode($album_ids_id);

$id_list_array = json_decode($album_ids,true);

$id_array = $id_list_array->album_ids;

var_dump($id_list_array);

for($i=0;$i<sizeof($id_array);$i++)
  {

    $alb_id = $id_array[$i]->alb_id;


    $album_sel_query = "SELECT a.a_id as id,a.a_name as name,round((b.total_value/b.total_votes),1) as rating,b.total_votes,b.total_value,a.a_pic as image,c.b_name FROM _album a inner join ratings b on b.id=a.a_id INNER JOIN _band c on c.b_id=a.b_id where a.a_id='".$alb_id."' "; 
    $result = mysql_query($album_sel_query);
    if (!$result)
      die("mySQL error: ". mysql_error());

    $count = mysql_num_rows($result);

    if($count > 0)
      {

        while($data = mysql_fetch_array($result))
          {
            $alb_name =$data['name']; 

            $singer = $data['b_name'];

            $rating = $data['rating'];

            $rate_value = $data['total_value'];

            $rate_votes = $data['total_votes'];

            $alb_pic =$data['image']; 
            $resmsg[] = array("Album_id"=>$alb_id,"Album_name"=>$alb_name,"Album_singer"=>$singer,"Album_rating"=>$rating,"Rating_total_value"=>$rate_value,"Rating_total_votes"=>$rate_votes,"Album_image_name"=>$alb_pic);

          }

        $jsonarr = array("response"=>array("success"=>"Y","ALBUM_DETAILS"=>$resmsg));
      }
    else
      {
        $jsonarr = array("response"=>array("success"=>"N","ALBUM_DETAILS"=>"Data not found"));
      }
  }
echo json_encode($jsonarr);

since i'd used var_dump(),. the output shows that

array(1) { [0]=> array(1) { ["album_ids"]=> array(1) { ["alb_id"]=> string(1) "5" } } } {"response":{"success":"N","ALBUM_DETAILS":"Data not found"}} 
share|improve this question

closed as unclear what you're asking by deceze, bensiu, Eric Brown, John Palmer, Sumit Bijvani Oct 6 '13 at 4:53

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question. If this question can be reworded to fit the rules in the help center, please edit the question.

2 Answers 2

up vote 0 down vote accepted

This has nothing to do with json. The error is in the first line. You use three times the same key, but array keys are unique.

array("alb_id"=>"2","alb_id"=>"4","alb_id"=>"5");

Must be :

array(2, 4, 5);
share|improve this answer
    
thank u,. i got proper array format,. but still prob in retrieving database value –  Crazy Developer Oct 5 '13 at 9:02

First, this isn't valid:

$album_ids_id = array("album_ids"=>array("alb_id"=>"2","alb_id"=>"4","alb_id"=>"5"));

A key in an array can only have one value, you can't have multiple alb_id keys in the same array. It should be:

$album_ids_id = array("album_ids"=>array(2, 4, 5));

Second, since you're giving the true as the second argument to json_decode(), it return associative arrays, not objects. So

$id_array[] = $id_list_array->album_ids;

should be:

$id_array = $id_list_array['album_ids'];

Also notice that there should not be a [] at the end of $id_array -- that's only used when you want to push a new element onto an array, not when you're assigning the array variable itself.

Then change your for loop to :

foreach ($id_array as $alb_id) {

and get rid of the $alb_id assignment inside the loop.

share|improve this answer
    
some prob in my foreach ???? –  Crazy Developer Oct 5 '13 at 9:04
    
I don't know, is there? –  Barmar Oct 5 '13 at 9:10
    
ya if i use foreach it doesn't takes value.. –  Crazy Developer Oct 5 '13 at 9:19
    
I don't know what "doesn't take value" means. If you fixed the other problems in your array assignment, $id_array should be an array of numbers, and foreach should iterate over them -- it's basic PHP syntax. –  Barmar Oct 5 '13 at 9:36

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