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PHP File:

<?php
require 'JSON.php'; // JSON.php
try
{
    $connection = mysql_connect("localhost", "root", "autoset") or die("Could not connect: " . mysql_error());
    mysql_query("SET NAMES utf8", $connection);
    mysql_select_db(test, $connection);
    $sql = "select * from Evaluation";
    $sth = mysql_query($sql) or die("Query error: " . mysql_error());
    // JSON 
    $json = new Services_JSON();
    $rows = array();
    while ($r = mysql_fetch_assoc($sth))
    {
        $rows[] = $r;
    }
    $output = $json->encode($rows);
    echo $output;
    mysql_close($connection);
}
catch (Exception $e)
{
    echo $e->getMessage();
    // Note: Log the error or something
}
?>

This is my JSON result:

[{"ENTERPRISE":"22","PERIOD":"53","EPS":"54","STOCKPRICE":"24","PER":"33"}]

How can I get fields without column names like this?

[22, 55, 54, 24, 33]
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4  
How are you getting that MySQL data? (P.S. [{"22","53","54","24","33"}] isn't valid JSON). –  Rocket Hazmat Sep 26 '12 at 19:31
    
[{"22","53","54","24","33"}] isn't valid JSON (objects require keys). ["22","53","54","24","33"] would be (arrays don't have keys). –  therefromhere Sep 26 '12 at 19:32
1  
So you're not posting your actual code, and ask us how to change it? –  lanzz Sep 26 '12 at 19:32
    
I mean [ 22, 53, 54, 24, 33] –  user1701308 Sep 26 '12 at 19:33
    
What is Services_JSON? Why not just use json_encode? –  Rocket Hazmat Sep 26 '12 at 19:42

3 Answers 3

If you never want the MySQL data as an associative array keyed by column names, and always want a plain array with numeric indices, use mysql_fetch_array($sth,MYSQL_NUM) instead of mysql_fetch_assoc($sth) when extracting $row from the query resource. You should end up with an array of arrays in the resulting JSON, instead of an array of objects:

[[22, 55, 54, 24, 33]]
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when I used mysql_fetch_array() it shows [{"0":"23","PER":"23"},{"0":"47","PER":"47"},{"0":"86","PER":"86"},{"0":"25","PE‌​R":"25"},{"0":"74","PER":"74"}] like this.. this is my php code I edited. still not working. <?php mysql_connect("localhost","root","autoset"); mysql_select_db("test"); $q=mysql_query("SELECT PER FROM Evaluation"); while($e=mysql_fetch_array($q)) $output[]=$e; print(json_encode($output)); mysql_close(); ?> –  user1701308 Oct 3 '12 at 11:19
    
I'd forgotten that mysql_fetch_array() requires MYSQL_NUM as the second parameter to ensure it returns only a numeric array. I've edited my answer to reflect this. –  flergl Oct 3 '12 at 16:50
    
OK COOL~ I feel like I can fix this problem. but it still shows [["23"],["47"],["86"],["25"],["74"]] and my application isn't plotting T.T you can see my edited question. it has more information stackoverflow.com/questions/12708029/… thanks! –  user1701308 Oct 3 '12 at 17:16
    
It sounds like you don't actually want an array of arrays, but rather one array with the values from the "PER" column (according to the other thread). So you're probably best off using mysql_fetch_assoc() and then appending only the value you want to the $rows array likely using $rows = $r["PER"]. –  flergl Oct 5 '12 at 20:16

Decode it using json_decode, then from there, use array_values on the dictionary.

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Oh wait, that's an object in the middle. In this case, the $assoc parameter of json_decode needs to be true to parse it as an associative array instead of an object. –  slugonamission Sep 26 '12 at 19:33
<?php
$values_data = array_values($data_from_sql);
$values_without_columns = json_encode($values_data );
?>
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