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I need to test how i can build <a> links based on the Json returned by and action method,so i have created the following action method which return static JSON-

public ActionResult statisjson(int start = 0, int rows = 50)
        {
string j = "{'data': [{'url': 'http://192.168.10.50/WCF?imgid=1', 'desc': 'firstdoc'},{'url': 'http://192.168.10.50/WCF?imgid=2', 'desc': 'firstdoc'},{'url': 'http://192.168.10.50/WCF?imgid=3', 'desc': 'firstdoc'}]}";
return Content(j, "application/json");

        }

Then i can defined the following script to build the links:-

$(document).ready(function getstaticjson() {




            $.ajax({
                type: 'GET',
                url: 'http://localhost:1431/Home/statisjson',
                dataType: 'json',

                success: function (result) {

                    $.each(result.data, function (key, val) {


                        $("<a>" + val.desc + "</a>").attr("href", val.url).appendTo("#links123");

                    });
                }
            });


        });
<div id="links123"></div>

but no links will be build when i run the application.

share|improve this question
    
Does the JavaScript console say anything? –  Andreas Nov 18 '12 at 8:12
    
thanks for the reply, i checked the return JSON using firebug and the JSON is recevied succsfully, but the links are not constructed. –  john G Nov 18 '12 at 8:14
    
Could you please put something along the lines of console.log(key, val) into the each loop to verify the data structure is being interpreted correctly? The jquery looks fine from here –  kieran Nov 18 '12 at 8:28
    
i can not understand what do u mean? –  john G Nov 18 '12 at 8:36
    
Well, if you take a look at this jsfiddle, it seems the JSON is okay, and the jquery is okay, so there must be something weird going on in between the two. If you were to put console.log(key,val) into the each function you would be able to see what values are actually getting passed to the jquery in your firebug console, and narrow down where the problem is. –  kieran Nov 18 '12 at 8:41

3 Answers 3

Your code for generating links is correct and works, but you should add some things to your $.ajax call.

  • Supply valid JSON using double quotes " instead of single quotes ' for keys and string values.

  • Add option dataType: 'json' so that your result variable will be an object and not string.

Working fiddle with your code available here

share|improve this answer
    
this will raise the following error "Error 1 Too many characters in character literal" under the "var jsonText = '{"data":" inside visual studio –  john G Nov 18 '12 at 9:37
    
You shouldn't use this piece of code: var jsonText = It was used for demonstration only. Just replace ' with " in your JSON code. –  Inferpse Nov 18 '12 at 10:03

Try this:

It is working. Check this: jsFiddle

var a = '<a ' + 'href="' + val.desc + '" >' + val.url + '</a>';
$("#links123").html(a);
share|improve this answer
    
same problme nothing will be displayed –  john G Nov 18 '12 at 8:58
    
@johnG Check my updated answer –  Kapil Khandelwal Nov 18 '12 at 9:05

You should return JSON like this (I have not tested code):

public ActionResult statisjson(int start = 0, int rows = 50)
    {
         var j = new { data = [new {url = 'http://192.168.10.50/WCF?imgid=1', desc = 'firstdoc'},...] };
         return Json(j, JsonRequestBehaviour.AllowGet);
    }

Or you should parse result (because you are returning string from action):

var data = JSON.parse(result);
share|improve this answer
    
this will raise the following error "Error 1 Too many characters in character literal" under the "var j = new { data = [new " inside visual studio –  john G Nov 18 '12 at 9:41
    
You can create objects and then push them to array. That's no problem. I only showed the way to do it –  karaxuna Nov 18 '12 at 12:00

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