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i can get the following string

([{"data":{"Rate":"","RoleA":"Student","NameA":"student","RoleB":"Tutor","NameB":"tutorB","Give":"0","Get":"1","Accept":"0"}}]);

i have read from http://api.jquery.com/jQuery.ajax/ but still not sure where did i do wrong.

this is my code

            $.ajax({
                        type:           'GET',
                        dataType:       'jsonp',
                        jsonpCallback:  'jsoncallback',
                        data: 
                        {

                                nameB:  nameB,
                                roleB:  roleB,
                                get123: get123,
                                accept: accept
                        },
                        url: 'http://mydomain.com/check.php?callback=?',
                        success: function(data){
                            alert(data[0].data.RoleA);
                            //alert("ABC");
                            //if ( $("#role").text() == "Tutor" )
                            //{
                            //  window.location.href='tutor_home.html';
                            //}
                            //else
                            //{
                            //  window.location.href='student_home.html';
                            //}         
                        },
                        error: function(jqXHR, textStatus){
                            alert("Request failed: " + textStatus);
                        }
            });

from chrome, i can find the json string, and it looks normal. however, it does not alert the success msg, instead it alert parsererror error..where should I change? Thanks

my php

<?php 

header("Cache-Control: no-cache, must-revalidate");
header("Expires: Sat, 26 Jul 1997 05:00:00 GMT");
header("Content-type: application/json");

include('mysqlConfig.php');


$nameB = $_GET["nameB"];
$roleB = $_GET["roleB"];
$get = $_GET["get123"];
$accept = $_GET["accept"];

$sql="SELECT * FROM tbl_rating WHERE NameB='$nameB' and RoleB='$roleB' and Get='$get' and Accept='$accept'";
$result=mysql_query($sql);


$rows = array();

//retrieve and print every record
while($r = mysql_fetch_assoc($result)){
    // $rows[] = $r; has the same effect, without the superfluous data attribute
    $rows[] = array('data' => $r);
}

// now all the rows have been fetched, it can be encoded
//echo json_encode($rows);

$data = json_encode($rows);
echo $_GET['jsoncallback'] . '(' . $data . ');';
?>

i am not sure why the URL is as follows Request URL: http://mydomain.com/check.php?callback=jsoncallback&nameB=tutorB&roleB=Tutor&get123=1&accept=0&_=1363710513593

the last parameter &_=1363710513593 i am not sure what is it?

but it can return the above string

does it related to jquery version? i used jquery-1.9.1.min.js

share|improve this question
    
What did you try? What errors did you encounter? (Don’t expect us to do your homework for you...) –  Martijn Mar 19 '13 at 15:16
    
i have tried to change the type from GET to POST and tried to change different URL, and all of them both alert "There was an error."... –  HUNG Mar 19 '13 at 15:29
1  
Can you show response from this link http://mydomain.com/check.php?nameB=tutorB&roleB=Tutor&get123=1&accept=0&jsonca‌​llback=mycallback –  vittore Mar 19 '13 at 16:11
    
@HUNG: Try to put a breakpoint on the alert, and check if the error function has no arguments. Chances are there is an argument, and that will probably contain more information about the specific error. –  Martijn Mar 19 '13 at 16:15
    
@vittore: yes I can. ([{"data":{"Rate":"","RoleA":"Student","NameA":"student","RoleB":"Tutor","NameB"‌​:"tutorB","Give":"0","Get":"1","Accept":"0"}}]); –  HUNG Mar 19 '13 at 16:19

3 Answers 3

up vote 3 down vote accepted

You need to specify a callback name in the ajax settings object (right now its called "?"). Read more about how this works on http://api.jquery.com/jQuery.ajax/. Lookup the "jsonp" in the settings object. You will also need to get that callback name in your PHP code and return it in the response so that that function will execute when it is being received to the client. Example: jsoncallback(YOURJSONDATA).

Pasted from http://api.jquery.com/jQuery.ajax/

jsonp Type: String Override the callback function name in a jsonp request. This value will be used instead of 'callback' in the 'callback=?' part of the query string in the url. So {jsonp:'onJSONPLoad'} would result in 'onJSONPLoad=?' passed to the server. As of jQuery 1.5, setting the jsonp option to false prevents jQuery from adding the "?callback" string to the URL or attempting to use "=?" for transformation. In this case, you should also explicitly set the jsonpCallback setting. For example, { jsonp: false, jsonpCallback: "callbackName" }

share|improve this answer
    
everything looks fine from the code after modified from above, but still cannot return success –  HUNG Mar 19 '13 at 15:56
    
I would need to get more information. Did you specify jsonp and jsonpcallback? The the response still begin with the questionmark? Did the url contain the jsonpcallbackname that you specified? Might it be some kind of error in the backend? –  He Nrik Mar 19 '13 at 16:17
    
i have updated in the post above, please let me know if u need further information =( –  HUNG Mar 19 '13 at 16:21
    
It looks like the response is missing the callback function name, so the error looks like its located in the PHP. It should look like this: jsoncallback([{"data":{"Rate":"","Ro... I cannot write any fancy PHPH example because I come from the microsoft world and have never coded any PHP :-(((( –  He Nrik Mar 20 '13 at 9:04

It looks like your server is trying to reutnr jsonp. Try adding

dataType: 'jsonp'

to your ajax request and drop the jsoncallback=? paramter

e.g.

 $.ajax({
                type: 'GET',
                dataType: 'jsonp',
                data: 
                {

                        //nameB:    nameB,
                        //roleB:    roleB,
                        //get123:   get123,
                        //accept:   accept
                },
                url: 'http://mydomain.com/check.php?nameB=tutorB&roleB=Tutor&get123=1&accept=0&',
                success: function(data){
                    alert(data[0].data.RoleA);     
                },
                error: function(){
                    alert('There was an error.');
                }
            });

            //return false;
        });
share|improve this answer
    
you need to also set custom jsonCallback name in the request. –  vittore Mar 19 '13 at 15:18
    
still alert error after changing to above coding...=( –  HUNG Mar 19 '13 at 15:39

UPDATED: you are showing that your service is not returning proper jsonp payload Fix it to use passed callback name, so you'll have the following response, when you passing in mycallback as jsonp callback.

 mycallback([{"data":{"Rate":"","RoleA":"Student","NameA":"student","RoleB":"Tutor","NameB"‌​:"tutorB","Give":"0","Get":"1","Accept":"0"}}]); 

UPDATED 2: &_=1363710513593 - is timestamp added to request in order make jquery able to figure out what was corresponding jsonp request, because of the way how jsonp is handled on the client ( ie response comes as text and is embeded in the body )

json service you are accessing has support for jsonp , so you need to configure your $.ajax to do jsonp request and change json callback name to jsoncallback

http://api.jquery.com/jQuery.ajax/

$.ajax({
                type: 'GET',
                dataType : 'jsonp',
                jsonpCallback : 'jsoncallback',
                data: 
                {

                        nameB:    nameB,
                        roleB:    roleB,
                        get123:   get123,
                        accept:   accept
                },
                url: 'http://mydomain.com/check.php',
                success: function(data){
                    alert(data[0].data.RoleA);
                 }       
                },
                error: function(){
                    alert('There was an error.');
                }
            });

            //return false;
        });
share|improve this answer
    
seems still not ok, it still shows the error –  HUNG Mar 19 '13 at 15:40

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