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I am trying to iterate through a MySQL object and use an ajax call on another page to append the data but I can't get the php to return valid JSON to the callback.

This one obviously doesn't work...

<?php

    $db_host = "localhost";
    $db_user = "blah";
    $db_pass = "blah";
    $db_name = "chat";
    $mysqli = new MySQLi($db_host, $db_user, $db_pass, $db_name);
    $myQuery = "SELECT * FROM users";
    $result = $mysqli->query($myQuery) or die($mysqli->error);
    $row = $result->fetch_assoc();
    echo json_encode($row);

?>

Or this one...

<?php

    $db_host = "localhost";
    $db_user = "blah";
    $db_pass = "blah";
    $db_name = "chat";
    $mysqli = new MySQLi($db_host, $db_user, $db_pass, $db_name);
    $myQuery = "SELECT * FROM users";
    $result = $mysqli->query($myQuery) or die($mysqli->error);
    while ( $row = $result->fetch_assoc() ){
        echo json_encode($row) . ", ";
    }

?>
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3 Answers 3

up vote 6 down vote accepted
$data = array();

while ( $row = $result->fetch_assoc() ){
    $data[] = json_encode($row);
}
echo json_encode( $data );

This should do it. Also, you can use http://jsonlint.com/ to see what are the problems with your JSON output.

Update: using fetch_all() might be a good idea too

$data = $result->fetch_all( MYSQLI_ASSOC );
echo json_encode( $data );
share|improve this answer
1  
+1 Or maybe use fetch_all(). Note: I guess you don't need . ", ". –  kapa Aug 9 '12 at 22:13
1  
@bažmegakapa , tnx –  tereško Aug 9 '12 at 22:16
    
@tereško yeah! this is a good one, but now I don't know what to do with the callback... before I was using $("#diver").append("<p>" + data.id + "</p>"); but I just get an undefined variable. –  nipponese Aug 9 '12 at 22:19
1  
@nipponese , try doing console.dir(data); in the callback (that's assuming that you have already parsed the JSON on JS side). Maybe the names of parameters have changed. Also, you are returning an array of objects instead of just a single object , that has been encode as JSON string. It would be something like data[0].id now. –  tereško Aug 9 '12 at 22:23
    
Oh, yeah, duh, it's an array now. Thanks so much! –  nipponese Aug 9 '12 at 22:46

I use this:

    $json = array();

    if(mysqli_num_rows($result)){
        while($row=mysqli_fetch_assoc($result)){
                $json[]=$row;
        }
    }
    mysqli_close($mysqli);
    echo json_encode($json);

?>

and I get something like this

[ {"id":"2","usuario":"zeldafranco","password":"lol"},{"id":"3","usuario":"franco","password":"franco"},{"id":"4","usuario":"peteko","password":"sanpeteko"},{"id":"5","usuario":"prueba","password":"prueba"},{"id":"6","usuario":"test","password":"test"}, {"id":"7","usuario":"pibe","password":"hola"}, {"id":"8","usuario":"que ase","password":"que ase"},{"id":"9","usuario":"trt","password":"trt"}, {"id":"10","usuario":"tyt","password":"tyt"} ]

share|improve this answer
    
Exactly what I was looking for, and its Valid JSON according to JSONLint. –  Vrutin Feb 19 at 10:55
$arrUsers = array();

$fetch = mysql_query("SELECT * FROM users"); 

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



 $arrUsers['id'] = $row['name'];
    $arrUsers['col1'] = $row['col1'];
    $arrUsers['col2'] = $row['col2'];

    array_push($arrUsers,$row_array);

}

echo json_encode($arrUsers);
share|improve this answer
    
What is $row_array? Have you tried this? –  kapa Aug 9 '12 at 22:18

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