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There are 3 arrays in my PHP, $console, $model, and $game.

Here is the code by the way:

<?PHP
    $console = array();
    $model = array();
    $game = array();

    $gameQuery = "SELECT * FROM consoleGame";
    $gameResult = mysql_query($gameQuery) or die(mysql_error());

    while ($row = mysql_fetch_assoc($gameResult)) {
        if(!is_array($game[$row['modelId']])) {
            $game[$row['modelId']] = array();
        }

         $game[$row['modelId']][$row['gameId']] = array(
                                        'Game Name' => $row['gameName'],
                                        'Game ID' => $row['gameId']);
    }

    $modelQuery = "SELECT * FROM consoleModel";
    $modelResult = mysql_query($modelQuery) or die(mysql_error());

    while ($row = mysql_fetch_assoc($modelResult)) {
        if (!is_array($model[$row['consoleId']])) {
            $model[$row['consoleId']] = array();
        }

        $model[$row['consoleId']][$row['modelId']] = array(
                                        'Model Name' => $row['modelName'],
                                        'Model ID' => array_values($game[$row['modelId']])); //This is the warning by the way.
    }

    $consoleQuery = "SELECT * FROM consoleConsole";
    $consoleResult = mysql_query($consoleQuery) or die(mysql_error());

    while ($row = mysql_fetch_assoc($consoleResult)) {
        if (!is_array($console[$row['consoleId']])) {
            $console[$row['consoleId']] = array();
        }

        $console[$row['consoleId']] = array(
                                        'Console Name' => $row['consoleName'],
                                        'Console ID' => array_values($model[$row['consoleId']]));
    }

    $console = array_values($console);
    echo json_encode($console);
?>

As you can see in the code, I have added array_values to $console and $model without a hitch. I was lucky back then. When I added array_values to $game, it creates a warning. What is the possible fix to this?

Additional information I declared $console, $model and $game as an array(). I have no idea why it's not shown above $gameQuery.

share|improve this question

closed as too localized by Felix Kling, tereško, hjpotter92, Pavel Anossov, Troy Alford Feb 8 '13 at 0:55

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
Your array is null meaning it's not an array, it's a null value –  Tivie Feb 7 '13 at 19:04
1  
The fix is to give an array instead of null. The warning is written in English and tells you exactly what the problem is. –  Sverri M. Olsen Feb 7 '13 at 19:04
    
What line does the warning refer to? –  Tivie Feb 7 '13 at 19:06
    
mysql_query should not be used in new application code because it will be removed in future versions of PHP. Why are you doing it this way? –  tadman Feb 7 '13 at 19:12
2  
Please, don't use mysql_* functions in new code. They are no longer maintained and are officially deprecated. See the red box? Learn about prepared statements instead, and use PDO or MySQLi - this article will help you decide which. If you choose PDO, here is a good tutorial. –  h2ooooooo Feb 7 '13 at 19:31

3 Answers 3

up vote 0 down vote accepted

You're using three different queries to get results from your database, and although you 'check' if a key is present for the 'modelId' in the $game array, it is possible that no game exists for a specific model;

This line guarantees that a key is added to the $game array if that modelId was not yet present

if(!is_array($game[$row['modelId']])) {
    $game[$row['modelId']] = array();
}

However, in the second loop, with results from SELECT * FROM consoleModel your loading all models, possibly some have no games in your database, so there won't be a key for that modelId in the $game array.

For example:

consoleGame

gameName | gameId | modelId
GameA    | 1      | 1
GameB    | 2      | 1

consoleModel

modelName| modelId
ModelA   | 1
ModelB   | 2

This will have 2 games for ModelA, but none for ModelB.

You may work around this issue by adding this inside the $modelResult loop too

if (!is_array($model[$row['consoleId']])) {
    $game[$row['modelId']] = array();
}

Some ideas

The way you're collecting the data doesn't really use the 'power' of the database. Databases are designed to retrieve data and related data (hence the name 'relational database')

For example, to collect all consoleModels, including the games for that model (if any) use this;

SELECT
   consoleModel.modelId,
   consoleModel.modelName,
   consoleGame.gameId,
   consoleGame.gameName
FROM
    consoleModel
    -- Using 'LEFT' join so that consoleModels without games will also be returned
    LEFT JOIN consoleGame
      ON consoleGame.modelId = consoleModel.modelId

Which will return;

modelId | modelName | gameId | gameName
1       | ModelA    | 1      | GameA
1       | ModelA    | 1      | GameA
2       | ModelB    | NULL   | NULL

Although this will duplicate the ModelName rows, it may make things easier for you, as you won't have to run 3 separate loops.

Mode optimized options will be possible (e.g. loop through all consoleModels in PHP and collect the related games inside the loop), I will leave that up to you to try and learn

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What about consoleConsole table? –  Jahm Feb 7 '13 at 20:53
    
@jahm I'll leave that for you to try and figure that out. The queries were just for illustrational purposes, to get you interested in options that a database can offer. I think my answer above the 'some ideas' is a resolution for your problem. Regarding the queries; try learning a bit about SQL queries (lots of info on the internet), if you have a question after trying some things, post a new question on StackOverflow –  thaJeztah Feb 7 '13 at 21:02

At first declare your $game as an array before using it such as $game = array() then please let us know where you are going to add array_value to $game

second you can use is_array($game) before adding it to array_values that is it array or not

share|improve this answer
    
Sorry I forgot to point out where the warning is. –  Jahm Feb 7 '13 at 19:31

You don't appear to be defining your $console as an array in the firat place. Add $console = array() somewhere near the beginning.

share|improve this answer
    
$console, $model and $game are all arrays. I declared it before $gameQuery and for some reason it is not showing. –  Jahm Feb 7 '13 at 19:33
    
thank you for editing. I have no idea why it's not showing. –  Jahm Feb 7 '13 at 19:38
    
Because you need to put a blank line before starting a code block. –  Niet the Dark Absol Feb 7 '13 at 19:39

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