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I am trying to export my MySQL tables from my database to a JSON file, so I can list them in an array.

I can create files with this code no problem:

        $sql=mysql_query("select * from food_breakfast");

    while($row=mysql_fetch_assoc($sql))
    {
    $ID=$row['ID'];
    $Consumption=$row['Consumption'];
    $Subline=$row['Subline'];
    $Price=$row['Price'];
    $visible=$row['visible'];

    $posts[] = array('ID'=> $ID, 'Consumption'=> $Consumption, 'Subline'=> $Subline, 'Price'=> $Price, 'visible'=> $visible);
    }
    $response['posts'] = $posts;

    $fp = fopen('results.json', 'w');
    fwrite($fp, json_encode($response));
    fclose($fp);

Now this reads a table and draws it's info from the fields inside it.

I would like to know if it is possible to make a JSON file with the names of the tables, so one level higher in the hierarchy.

I have part of the code:

    $showtablequery = "
    SHOW TABLES
    FROM
        [database]
    LIKE
    '%food_%'
    ";

$sql=mysql_query($showtablequery);

    while($row=mysql_fetch_array($sql))
     {
       $tablename = $row[0];

     $posts[] = array('tablename'=> $tablename);
      }
     $response['posts'] = $posts;

But now i am stuck in the last line where is says: $ID=$row['ID']; This relates to the info inside the Table and I do not know what to put here.

Also as you can see, I need to filter the Tables to only list the tables starting with food_ and drinks_

Any help is greatly appreciated:-)

share|improve this question
    
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 They are no longer maintained and are officially deprecated.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. –  Mr. Polywhirl Jan 8 '13 at 2:32

1 Answer 1

up vote 1 down vote accepted

There is no 'table id' in MySQL and therefore the result set from SHOW TABLES has no index id. The only index in the resultset is named 'Tables_in_DATABASENAME'.

Also you should use the mysqli library as the good old mysql library is depreacted. Having prepared an example:

<?php

$mysqli = new mysqli(
    'yourserver',
    'yourusername',
    'yourpassword',
    'yourdatabasename'
);

if ($mysqli->connect_errno) {
    echo "Failed to connect to MySQL: (" . $mysqli->connect_errno . ") "
         . $mysqli->connect_error;
}


$result = $mysqli->query('SHOW TABLES FROM `yourdatabasename` LIKE \'%food_%\'');
if(!$result) {
    die('Database error: ' . $mysqli->error);
}

$posts = array();
// use fetch_array instead of fetch_assoc as the column
while($row = $result->fetch_array()) {
    $tablename = $row[0];
    $posts []= array (
        'tablename' => $tablename
    );
}

var_dump($posts);
share|improve this answer
    
ok, so I got that and it generates the file, but does not populate the array - I have updated the code to get the formatting right, please see the second section. –  Jeff Kranenburg Jan 8 '13 at 1:55
    
Is my example working? –  hek2mgl Jan 8 '13 at 2:08
    
looking at it now, will update soon:-) –  Jeff Kranenburg Jan 8 '13 at 2:10
    
No not yet, sorry for the delay -> is the secret, the pw to the database and the test the name of the database? –  Jeff Kranenburg Jan 8 '13 at 2:21
    
no I've just created a database named test for the example –  hek2mgl Jan 8 '13 at 2:23

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