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I'm a novice who's trying to convert code from prototype to JQuery. I'm getting through the basics but am stuck with the code below. I've tried using jquery extent but cannot work it out. Here is the code, I'd really appreciate some help.

var SaveForm = Class.create();
SaveForm.prototype = {
    formId: null,
    responseText: null,

    initialize: function(formId)
    {
            this.formId = formId;
    }, 
    sendRequest: function(idform)
    {
            var referenceThis = this;
            $(idform).request(
            {
                      onSuccess: function(transport)
                      {
                              referenceThis.responseText = transport.responseText;
                              referenceThis.onSuccess();
                      },
                      onFailure: function(transport)
                      {
                              referenceThis.responseText = transport.responseText;
                              referenceThis.onFailure();
                      }
            });
    },
    onSuccess: function()
    {
    },
    onFailure: function()
    {
    }
}
share|improve this question
2  
Class inheritance is outside the scope of jQuery, I would suggest using one of the many existing pre-built methods for doing this (jQuery does not come with one built-in.) –  Kevin B Dec 10 '12 at 15:10

2 Answers 2

up vote 0 down vote accepted

jQuery is made for DOM, Event handling, Ajax and Animation. Creating "classes" is not in its scope.

However, you can easily transform it to a simple plain JavaScript constructor function and prototype methods:

function SaveForm(formId) {
    this.formId = formId;
    this.responseText = null;
}
SaveForm.prototype.sendRequest = function(idform){
    var _this = this;
    $(idform).request({
        onSuccess: function(transport){
            _this.responseText = transport.responseText;
            _this.onSuccess();
        },
        onFailure: function(transport){
            _this.responseText = transport.responseText;
            _this.onFailure();
        }
    });
};
SaveForm.prototype.onSuccess = function(){};
SaveForm.prototype.onFailure = function(){};

However, I'm not sure which of these methods you actually need. jQuery has no request method, and to do Ajax requests just use the powerful $.ajax function, and the Defereds functionality. Sounds like all you need is

 function submitForm(id) {
     var $form = $('#'+id);
     return $.ajax({
         url: $form.attr("target"),
         method: $form.attr("method"),
         data: $form.serialize(),
         dataType: "html"
     });
 }
 // Usage:
 submitForm("myForm")
   .done(function onSuccess(responseText) {…})
   .fail(function onFailure(error) {…});
share|improve this answer
    
I found rewriting the code and using $.ajax was the best way to go. Thanks for your help. –  gabe K Dec 18 '12 at 14:31
    
Glad to have helped, you might accept the answer then :-) –  Bergi Dec 18 '12 at 18:48

The translation would look like that: - you don't need to use 'Class.create()' - you have to use new 'new' when creating a new SaveForm instance - change 'referenceThis' to _this.

Why do you pass 2 times the formId? only once in the initialize should be enough

var SaveForm = function(){
    this.formId;
    this.responseText;
};

SaveForm.prototype.initialize = function(formId){
    this.formId = formId;
}

SaveForm.prototype.sendRequest = function(idform){
    var _this = this;
    $(idform).request({
        onSuccess: function(transport){
            _this.responseText = transport.responseText;
            _this.onSuccess();
        },
        onFailure: function(transport){
            _this.responseText = transport.responseText;
            _this.onFailure();
        }
    });
};

SaveForm.prototype.onSuccess = function(){};
SaveForm.prototype.onFailure = function(){};


var form = new SaveForm(); // 'new' is very important!!
form.initialize('myId');
share|improve this answer
    
Nonsense: this.formId; –  Victor Dec 11 '12 at 19:29

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