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I've started working on quite big project. Concept: Some1 inserts data to mysql. Other people gets data live on their screen(table) I had my code working, but I was filling the tables in php and as I understand it is not good for bandwidth, so I'm trying to catch data from mysql with php code, send it to js, which would then format/fill the table (setinterval is running). But my table isn't filling and I'm out of ideas. I'm new to js, so if You see anything wrong let me know! Thank You!


$rows = array();
$con = mysql_connect("where","who","pass");
if (!$con)
  die('Could not connect: ' . mysql_error());
mysql_select_db("dbname", $con);
$result = mysql_query("SELECT * FROM Brokers");
$rows = array();
while($r = mysql_fetch_assoc($result)){
    $rows[] = $r;
print json-encode($rows);


    function fetchData()
         url: 'brokers.php',
        dataType: 'json',
        success: createTable(rows)

function createTable(rows)
    var flowTable = '<table id="resultTable">'
    for (var i=0; i< rows.length; i++){
        flowTable += '<tr class="filterthis height20">',
        flowTable += '<td class="companyname width120">',
        flowTable += rows[i].company_name + '</td>',
        flowTable += '<td class="width180">' ,
        flowTable += rows[i].address + '</td>',
        flowTable += '<td class="width70">' ,
                .........SOME MORE...........
        flowTable += '</tr>';
    flowTable += '</table>';
    $("#here").innerHTML = flowTable;
function starttimer(){
  interval = setInterval("fetchData()",1000);


share|improve this question
First thing I noticed is 'json-encode' in your PHP - it should be json_encode – Fluidbyte Jun 22 '12 at 20:14
Thank You for pointing that out! – Mantosh Jun 22 '12 at 20:33

3 Answers 3

It is json_encode with an underscore not a dash that you have json-encode.

Also use:

interval = setInterval(fetchData, 1000);

Instead of:

interval = setInterval("fetchData()",1000);
share|improve this answer
Syntax error, #1 snippet. – Alex Belanger Jun 22 '12 at 20:17
@AlexBelanger; Fixed, thanks – Blaster Jun 22 '12 at 20:20
Change those too, thank You, but still no information in the table – Mantosh Jun 22 '12 at 20:36

One problem is that you're essentially setting your "success" handler to "undefined". This is because you have success: createTable(rows) which is actually calling the function and setting its return value ("undefined") as the handler.

Instead, you will want something more like:

success: function(data) {

Of course, since the handler is (I think) passed the data as the first argument, you could accomplish the same thing via:

success: createTable
share|improve this answer
How will he pass the data argument in your last example ? – Blaster Jun 22 '12 at 20:20
The second example is equivalent to the first. They both assume that the "data" is passed as the first argument by the jQuery framework. – Brendan Jun 22 '12 at 20:23
Change it, but still no content in table. But after inspecting the page running, script is sending the request and by size of it (6kb while the php is just 423bytes) I think it is receiving it, something else is in the way. Maybe data is not going outside ajax request? – Mantosh Jun 22 '12 at 20:39
Check that the response from the server is coming with an OK status (200). Add an error handler function to your ajax call ( so that you can at least alert() yourself of any errors. Also, alert() your data or something so you can take a look at the response content (after being parsed by jQuery). – Brendan Jun 28 '12 at 13:45
up vote 0 down vote accepted

Well I found a solution.

Corrections to script JS:

function fetchData(){
        url: 'brokers.php', //where are we sending request
        dataType: 'json',
        success: createTable //where are we transfering data from php ajax request

var createTable = function(data){
    rows = jQuery.parseJSON(data) //creates object from information sent from php
    $.each(rows, function(key,value){  //for each row from php does things You want
        $("#Somediv").html = value.owner_name
        //and etc.


$con = mysql_connect();    
if (!$con) {
   die('Could not connect: ' . mysql_error());

$result = mysql_query("SELECT * FROM sometable WHERE something=66");
while($row= mysql_fetch_assoc($result)){ //for each row which = our $result query

echo json_encode($rows);
share|improve this answer

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