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I am new for jquery, ajax.... value from php file is return back thro' json_encode. My problem is here i dont know how to access those datas.

Here the Code...... js code....

<script>
 $(document).ready(function(){

     setInterval(ajaxcall, 1000);
 });
 var devid=1;
 function ajaxcall(){
    devid++;
    //alert(devid);
    $.ajax(
    {
     url: 'gettime.php',
     data:{devid:devid},

     success: function(data) 
     {

         //data = data.split(',');
         data1 = data.a;
         data2 = data.b;        

         var latlng = new google.maps.LatLng(data1, data2);
         //alert(data.lat);

         var options = {
            zoom: 14,
            center: latlng,
            mapTypeId: google.maps.MapTypeId.ROADMAP
         };
         var map = new google.maps.Map(document.getElementById('map_canvas'), options);

    }

    });
}

</script>

php file (gettime.php)

<?php 
    $vvid = $_REQUEST['devid'];
    echo $vvid;
    $sql= mysql_query("select * from maploca where id='$vvid'");
    $sqlqry = mysql_fetch_array($sql);
    $var1 = $sqlqry['latitude'];
    $var2 = $sqlqry['latitude'];
    echo json_encode(array("a" => $var1, "b" => $var2));
?>
share|improve this question
    
You want to access this json array in js rite??? –  elavarasan lee May 8 '13 at 6:30
2  
It is not clear what is your problem. In your js code you are already accessing data returned with json_encode (here: data1 = data.a; data2 = data.b;) , so how else you want to access it? –  FAngel May 8 '13 at 6:34
    
You are using an obsolete database API and should use a modern replacement. You are also vulnerable to SQL injection attacks that a modern API would make it easier to defend yourself from. –  Quentin May 8 '13 at 6:44
    
thanks for ur reply... here in jquery i need to pass those variables in google map function. Then only i will show lat, lan in googke map. –  Murali Daran May 8 '13 at 6:49

4 Answers 4

up vote 1 down vote accepted

As far as I can see, your code should work just fine. Except that you may have a problem in gettime.php. I do not see mysql_connect code there, so you query may fail to be executed.

Another possible problem there:

 $var1 = $sqlqry['latitude'];
 $var2 = $sqlqry['latitude'];
 echo json_encode(array("a" => $var1, "b" => $var2));

You are taking latitude twice, when I guess it should be something like:

$var1 = $sqlqry['latitude'];
$var2 = $sqlqry['longitude'];
echo json_encode(array("a" => $var1, "b" => $var2));

Anyway, check your PHP error log. Possibly you will find some error there (you will find it for sure if you are really missing mysql_connect code)

Also - learn how to use developer tools/firebug. It will help you a lot with debugging JS.

EDIT

Remember that your script must return ONLY json code. If there will be some garbage (Like html code) in response, browser will be unable to parse response and you will get error or simple string (instead of object) in data of success function.

share|improve this answer
    
Thanks for ur reply., I check out mysql. No more errors in db connection. here value also return to jquery, but my problem is i don't know how to get those php variables –  Murali Daran May 8 '13 at 7:13
    
Try to add header('Content-type: application/json'); before echo json_encode This will show jquery that request returns json –  FAngel May 8 '13 at 7:25
    
i tried it but won't work.... –  Murali Daran May 8 '13 at 7:32
1  
I really missed that db connection. Now I cleared it and i got value for both 'a' and 'b'., here can you give me how to separate those values... –  Murali Daran May 8 '13 at 7:44
1  
dataType: "json", like suggested by @DevalShah or that header suggested by me should work just fine. If you add one of them (or both) it should return you data like a regular object. –  FAngel May 8 '13 at 13:07

Here in your ajax call dataType: "json", is missing

$.ajax(
{
 url: 'gettime.php',
 data:{devid:devid},
 dataType: "json",
 ....................
})
share|improve this answer
1  
@MuraliDaran What does "wont't work" mean? You are getting wrong results or what? Have you checked console in browser for errors? –  FAngel May 8 '13 at 6:57
1  
what it comes when alert(data) please provide output @MuraliDaran –  Deval Shah May 8 '13 at 7:19
1  
@MuraliDaran Try to do alert(data) instead. What is returned? –  FAngel May 8 '13 at 7:22
1  
@MuraliDaran Well, than simply change your php script so it will not return any HTML code. –  FAngel May 8 '13 at 7:26
1  
@MuraliDaran echo json_encode(array("a" => $var1, "b" => $var2)); exit; ,you should write this and in ur PHP script problem is there .. so echo $vvid; comment this line only data json_array would be echo there && try 'print_r($sqlqry);' to check for correct lat and lng. –  Deval Shah May 8 '13 at 7:29

You are missing the the dataType property in ajax call by default data are return back by php script in text/xml format in order to change the default behavior you have to specify the right format that is json so your ajax call should be

ajax

$.ajax( {

url: 'gettime.php',

 data:{devid:devid},

 dataType: "json",

 type:post

})

php

$vvid = $_REQUEST['devid'];
echo $vvid;
$sql= mysql_query("select * from maploca where id='$vvid'");
$sqlqry = mysql_fetch_array($sql);
$var1 = $sqlqry['latitude'];
$var2 = $sqlqry['latitude'];
echo json_encode(array("a" => $var1, "b" => $var2));
share|improve this answer

Finally problem has solved the code will be....

<script>
    $(document).ready(function()
    {
        setInterval(ajaxcall, 1000);
    });
    var devid = 1;
    function ajaxcall()
    {
        devid++;
        var veh = <?php echo $veh?>
        //alert(devid);
        $.ajax({
            url: 'gettime.php?devid='+devid+'&veh='+veh,
            success: function(data) 
            {
                var datasep = data.split(',');


                /*if(datasep2!=null && datasec2!=null)
                {*/
                var datasep1 = datasep[0].split(':');
                var datasep2 = datasep1[1].replace('"','');
                datasep2 = datasep2.replace('"','');

                var datasec1 = datasep[1].split(':');
                var datasec2 = datasec1[1].replace('"}','');
                datasec2 = datasec2.replace('"','');
                //alert(datasep2);
                var json = [
                { "lat":datasep2,
                "lng":datasec2 }]
                var latlng = new google.maps.LatLng(datasep2,datasec2);
                var myOptions = {
                    zoom: 18,
                    center: latlng,
                    mapTypeId: google.maps.MapTypeId.ROADMAP
                };
                var map = new google.maps.Map(document.getElementById("map_canvas"), myOptions);
                var polylineCoordinates = [
                new google.maps.LatLng(datasep2,datasec2)];
                var polyline = new google.maps.Polyline({
                    path: polylineCoordinates,
                    strokeColor: '#FF0000',
                    strokeOpacity: 1.0,
                    strokeWeight: 2,
                    editable: true
                });
                polyline.setMap(map);
                for (var i = 0, length = json.length; i < length; i++) 
                {
                    var data = json[i],
                    latLng = new google.maps.LatLng(data.lat, data.lng); 

                    // Creating a marker and putting it on the map
                var marker = new google.maps.Marker({
                position: latLng,
                map: map
                });
                }   
                /*}
                else
                {
                    datasem1 = datasep[0].split(':');
                    datasem2 = datasem1[1].replace('"','');
                    datasem2 = datasem2.replace('"','');
                    alert(datasem2);
                }   */
            }
        });
    }
    </script>

php code will be....

<?php //ob_start();
include "../../config/connection.php"; 
  //  header("Content-Type: application/javascript");
    //header('Content-Type: application/json');

    $vvid = $_REQUEST['devid'];
    $veh = $_REQUEST['veh'];
    if($vvid!='')
    {
    $sql= mysql_query("select * from maploca where id='$vvid' and veh_id='$veh'") or die(mysql_error());
    $sqlqry = mysql_fetch_array($sql) or die(mysql_error());
    $var1 = $sqlqry['latitude'];
    $var2 = $sqlqry['longitude'];
    echo json_encode(array('a' => $var1, 'b' => $var2));
    }
    else
    {
        echo "Empty Value";
    }

    //echo $_GET['callback'] . "([" . implode(",", $ll) . "]);";*/
?>
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