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I've seen lots of similar question on here, but I haven't been able to get my desired output. Could someone please help me out? How can generate the following JSON structure? My query is fine, I just can't figure out how to loop through and get this. Thanks

DESIRED OUTPUT

{
    "players": [
        {
            "id": 271,
            "fname": "Carlos",
            "lname": "Beltran",
            "position": "OF",
            "stats": [
                {
                    "year": "2010",
                    "hr": 32,
                    "rbi": 99,
                    "team": "NYM"
                },
                {
                    "year": "2011",
                    "hr": 35,
                    "rbi": 100,
                    "team": "STL"
                }, 
                {
                ............
                }
            ]
        },
        {
          ........
        }
    ]
}

CURRENT OUTPUT

{"0":{"cbs_id":"18817","fname":"Carlos","lname":"Beltran"},"stats":[{"year":"2007","hr":"33","rbi":"112"}]}

{"0":{"cbs_id":"174661","fname":"Willie","lname":"Bloomquist"},"stats":[{"year":"2007","hr":"2","rbi":"13"}]}

{"0":{"cbs_id":"1208693","fname":"Brennan","lname":"Boesch"},"stats":[{"year":"2010","hr":"14","rbi":"67"}]}

Which is generated with: (I know I'm way off)

if ($result = mysqli_query($link, $sql)) {

        $player = array();

        while ($row = $result->fetch_assoc())
        {

            $player[] = array (
            'cbs_id' => $row['cbs_id'],
            'fname' => $row['fname'],
            'lname' => $row['lname']
            );

            $player['stats'][] = array(
                'year' => $row['year'],
                'hr' => $row['hr'],
                'rbi' => $row['rbi']
            );

        }

        $json = json_encode($player);
        echo "<pre>$json</pre>";

        mysqli_free_result($result);
    }
}

NOTE: Each player can have more than one "stats" record (year, hr, rbi, etc)

share|improve this question
3  
Please, don't use mysql_* functions for new code. They are no longer maintained and the community has begun the deprecation process. See the red box? Instead you should learn about prepared statements and use either PDO or MySQLi. If you can't decide, this article will help to choose. If you care to learn, here is good PDO tutorial. –  Second Rikudo Jul 21 '12 at 20:33
    
@Truth Thanks for the info –  relyt Jul 21 '12 at 20:43

2 Answers 2

up vote 3 down vote accepted

This may give what you want:

$players = array();

while ($row = $result->fetch_assoc())
{
  $id = (int)$row['cbs_id'];

  if ( ! isset($players[$id]))
  {
    // New player, add to $players array.
    // For the moment index players by ID so stats can be easily added
    // to an existing player. Without indexing (using $players[] = ...),
    // the same player would be added for each stats record related to
    // him.
    $players[$id] = array(
      'id'       => $id,
      'fname'    => $row['fname'],
      'lname'    => $row['lname'],
      'stats'    => array()
    );
  }

  // Add the stats
  $players[$id]['stats'][] = array(
    'year' => (int)$row['year'],
    'hr'   => (int)$row['hr'],
    'rbi'  => (int)$row['rbi']
  );
}

// Players are indexed by their ID in $players but need to be contained in
// a JSON array, so use array_values() to remove indices, e.g. convert
//
//     array(
//       271 => array('id' => 271, ...),
//       ...
//     )
//
// to
//
//     array(
//       array('id' => 271, ...),
//       ...
//     )
//
$data = array('players' => array_values($players));
$json = json_encode($data);

Eventually you might leave out the integer casts and let PHP automatically convert stringified numeric data (that's the default behaviour with MySQL query results) back to PHP numbers by using the MYSQLI_OPT_INT_AND_FLOAT_NATIVE mysqli connection option as described in example #5 of this page. Note that it requires the mysqlnd library to be used by PHP (you can check that with phpinfo).

share|improve this answer

You need an associative array. Something like this should get you started:

$data = array(
    'players' => array(
        array(
           'id' => 271,
           'fname': 'Carlos',
           'lname': 'Beltran',
           'position': 'OF',
           'stats' => array(
               array(
                   'year' => 2010,
                   'hr': 32,
                   'rbi': 99,
                   'team': 'NYM'
               ),
               ...
           )
        ),
        ...
    )
);

To encode it into json, use json_encode:

$json = json_encode($data);
share|improve this answer
    
I guess the problem is that I'm having issues building the array correctly –  relyt Jul 21 '12 at 19:52
    
@relyt What have you tried? –  alexn Jul 21 '12 at 19:54
    
I updated my question. I know I'm way off, but I've been staring at this for way too long. –  relyt Jul 21 '12 at 20:26
    
@relyt Try this: gist.github.com/3157106. –  alexn Jul 21 '12 at 20:44
    
WHy not take the JSON that you have (the 1 line thing), and just use that? –  Cole Johnson Jul 21 '12 at 20:58

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