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I've wrote the following function so I don't need to rewrite ajax calls for every event I have.

function ajaxCall(){
        var params = new Array();

        for(var i = 0; i < arguments.length; i++ ){
            params[i] = arguments[i];
        }

        $.ajax({
            url: params[0],
            type: params[1],
            data: params[2],
            dataType : "json",
            beforeSend: function(x) {
                if(x && x.overrideMimeType){
                    x.overrideMimeType("application/json;charset=UTF-8");
                }
            }
        });
    }

Since ajax is asynchronous I cannot simply return the result from the ajaxCall function when call is successful. How can I create a success call back function? I've tried out this but it's probably wrong. Please help me on since I'm new to jquery & javascript.

ajaxCall("/getItemGroups", "POST" , data).success(function(){
            alert("success");
        });
share|improve this question
    
use success:callback in ajax call and send a function as 4 argument when callin the ajacCall –  bipen May 8 '13 at 9:53
    
at least see the api before asking question.. –  vishal sharma May 8 '13 at 9:53
    
the ajax call returns a promise: api.jquery.com/deferred.promise –  David Fregoli May 8 '13 at 9:55

4 Answers 4

up vote 4 down vote accepted

There is nothing in your code that motivates grabbing the arguments collection manually. Use named parameters:

function ajaxCall(url, type, data, callback){
    $.ajax({
        url: url,
        type: type,
        data: data,
        dataType : "json",
        success: callback,
        beforeSend: function(x) {
            if(x && x.overrideMimeType){
                x.overrideMimeType("application/json;charset=UTF-8");
            }
        }
    });
}

Invoked like so:

ajaxCall("/getItemGroups", "POST", data, function() {
    alert('success');
});

I must say, though, that the resulting function adds very little to what $.ajax does manually. You may be more interested in looking at $.ajaxSetup to define a global beforeSend callback, for instance.

Anywhere in your code, call

$.ajaxSetup({
    dataType : "json",
    beforeSend: function(x) {
        if(x && x.overrideMimeType){
            x.overrideMimeType("application/json;charset=UTF-8");
        }
    }
});

Then your

ajaxCall('/getItemGroups', 'POST', data, function() { ... });

Would be identical to

$.post('/getItemGroups', data, function() { ... });

(There is of course a $.get equivalent)

share|improve this answer
    
Your answer is awesome! but one question though! say I have a place where I don't need any data to be passed. So how can when I write the function with 3 params, there will be an error! ho can I bypass this issue! –  Dimal Chandrasiri May 8 '13 at 10:12
    
pass it as null –  Anoop Joshi May 8 '13 at 10:20
    
@DimalChandrasiri: JavaScript isn't picky about parameters. You can name two parameters and still call the function passing four, and you'll be able to access the others from the arguments collection, or conversely, you can have the ajaxCall signature that I outline above, but call it passing only three parameters, and callback will be undefined, meaning you'll call $.ajax setting success: undefined, which is not a problem at all. –  David Hedlund May 8 '13 at 10:27

Use the success option:

   $.ajax({
            url: params[0],
            type: params[1],
            data: params[2],
            dataType : "json",
            success: function(data) { alert(data); },
            beforeSend: function(x) {
                if(x && x.overrideMimeType){
                    x.overrideMimeType("application/json;charset=UTF-8");
                }
            }
        });

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

  function AJAXCall(successFunction) {
       $.ajax({
                url: params[0],
                type: params[1],
                data: params[2],
                dataType : "json",
                success: successFunction,
                beforeSend: function(x) {
                    if(x && x.overrideMimeType){
                        x.overrideMimeType("application/json;charset=UTF-8");
                    }
                }
            });
  }
share|improve this answer
    
I could simply do that if the success function doesn't change from call to call, but in my case, the success code changes with the call! –  Dimal Chandrasiri May 8 '13 at 9:51
    
@DimalChandrasiri - pass the callback as a function –  Darren Davies May 8 '13 at 9:55

The jQuery.ajax() function returns a Deferred object, which your ajaxCall function can return. Then you can use the Deferred object's .done() function to add a success callback function to it.

function ajaxCall() {
    ...

    return $.ajax({
        // options
    });
}

Then use it like so:

ajaxCall(arguments).done(function(data) {
    // your logic here
});
share|improve this answer

I use something like this:

AjaxGET = function (myUrl, myData) {
    var result = $.ajax({
        type: "GET",
        url: myUrl,
        data: myData,
        dataType: 'html',
        async: false,
        success: function (data) {
        }
    }) .responseText ;
return  result;
}   

var myAjaxResponce = AjaxGet(myUrl, myData);

share|improve this answer
    
making async as false is not a good practice.. –  Anoop Joshi May 8 '13 at 10:15
    
@anoooooooooooooooop if you have a single call, its perfect. You need to check if your ajax call returns or not any kind of data. I used it after user interactoin with my page. Explain why its bad practice. –  andrew May 8 '13 at 10:30
    
please refer this link stackoverflow.com/questions/3141396/… –  Anoop Joshi May 8 '13 at 10:34
    
@anoooooooooooooooop i say it again, single call, not multiple calls. Call is made after user interction, NOT during page loading. –  andrew May 8 '13 at 10:48

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