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i'm trying for days to get this working.. but i still fail.

<?php
$province = $_POST['test'];
$dbhost = 'localhost';
$dbname = 'news';
$dblogin = 'root';
$dbpass = '';

function dbConnect() {
   global $dbhost;
   global $dbname;
   global $dblogin;
   global $dbpw;

   $db = mysql_connect($dbhost, $dblogin, $dbpw) or die("could not
connect to database: ".mysql_error());
   mysql_select_db($dbname) or die("could not select database");
   return $db;
}
function dbClose($db) {
   mysql_close($db);
}


// basis code ^^


$db = dbConnect();

$query = "SELECT title FROM news_google_us"; 

$result = mysql_query($query) or die(mysql_error());


while($row = mysql_fetch_array($result, MYSQL_ASSOC))
{

echo json_encode($row);

 ;}


?>

i get this as response:

{"title":"Obama and GOP in Deal on Tax Cuts - New York Times"}{"title":"WikiLeaks Founder Warns About More Dispatches - New York Times"}{"title":"S. Korea to make islands near N. Korea fortresses - Jerusalem Post"}{"title":"9th Circuit judges explore narrow routes to reinstate gay marriage - Los Angeles Times"}{"title":"Killing of Iranian Scientist Overshadows 6-Nation Nuclear Talks - BusinessWeek"}{"title":"Schwarzenegger proposal rebuffed - San Jose Mercury News"}{"title":"WikiLeaks list of 'critical' sites: Is it a 'menu for terrorists'? - Christian Science Monitor"}{"title":"Big moments in the Concorde's history - BusinessWeek"}{"title":"Citigroup Stake Is Sold for About $10.5 Billion as US Unwinds Investment - Bloomberg"}{"title":"Jets Vs. Patriots: New England In Full-On Kobra Kai Mode...No Mercy - SB Nation"}{"title":"Obama, GOP cut deal to extend tax cuts - USA Today"}

I use Jquery to get the data:

 $.ajaxSetup({"error":function(XMLHttpRequest,textStatus, errorThrown) {   
      alert(textStatus);
      alert(errorThrown);
      alert(XMLHttpRequest.responseText);
  }}); 

 $.getJSON('mysql-query.php', function(data) {
    alert(data);
 });

I've tried a stripped version

<?

$dsn = "mysql:host=localhost;dbname=news";
$username = "root";
$password = "";

$pdo = new PDO($dsn, $username, $password);

$rows = array();
if(isset($_GET['descrtiption'])) {
 $stmt = $pdo->prepare("SELECT description FROM news_BBC_sport WHERE name = ? ORDER BY description");
 //   $stmt = $pdo->prepare("SELECT variety FROM fruit WHERE name = ? ORDER BY variety");
    $stmt->execute(array($_GET['descrtiption']));
    $rows = $stmt->fetchAll(PDO::FETCH_ASSOC);
    echo "<pre>";
print_r(phpinfo());
echo "</pre>";
}

echo json_encode($rows);
?>

tried this one

I've tried a stripped version

<?

$dsn = "mysql:host=localhost;dbname=news";
$username = "root";
$password = "";

$pdo = new PDO($dsn, $username, $password);

$rows = array();
if(isset($_GET['descrtiption'])) {
 $stmt = $pdo->prepare("SELECT description FROM news_BBC_sport WHERE name = ? ORDER BY description");
 //   $stmt = $pdo->prepare("SELECT variety FROM fruit WHERE name = ? ORDER BY variety");
    $stmt->execute(array($_GET['descrtiption']));
    $rows = $stmt->fetchAll(PDO::FETCH_ASSOC);
    echo "<pre>";
print_r(phpinfo());
echo "</pre>";
}

echo json_encode($rows);
?>

tried this one

http://www.phpclasses.org/package/4369-PHP-Generate-JSON-representation-from-MySQL-queries.html

I'm using firebug to check what's wrong. I get this:

parse error

syntax error JSON parse

(shows json data)

I've tried like everything, but i still get this error. I'm using a XAMPP server on OSX.

share|improve this question
    
so, no Java after all? – Marco Mariani Dec 25 '10 at 16:12
up vote 0 down vote accepted

You first attempt is almost right, just don't echo each row, collect the result then echo:

while($row = mysql_fetch_array($result, MYSQL_ASSOC))
{
    $rows[] = $row;
}
echo json_encode($rows);
share|improve this answer
    
Yes, thank you!!! – Martijn Mellema Dec 26 '10 at 5:54

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