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i have a html page, which contains a form and i want when the form is successfully submited, show the below div:

<div class="response" style="display: none;">
  <p>you can download it<a href="{{ link }}">here</a></p>
</div>

i also have a jquery function:

    <script type="text/javascript">
        $(function() {
            $('#sendButton').click(function(e) {            
                e.preventDefault();
                var temp = $("#backupSubmit").serialize();
                validateForm();
                $.ajax({
                    type: "POST",
                    data: temp,
                    url: 'backup/',
                    success: function(data) {
                        $(".response").show();
                    }
                });
            });
        });

</script>

and in my views.py (code behind) i create a link and pass it to html page. i have:

def backup(request):
    if request.is_ajax():
        if request.method=='POST':
            //create a link that user can download a file from it. (link)
            variables = RequestContext(request,{'link':link})
            return render_to_response('backup.html',variables)
        else:
            return render_to_response('backup.html')
    else:
        return render_to_response("show.html", {
            'str': "bad Request! :(",
            }, context_instance=RequestContext(request))
backup = login_required(backup)

my problem: it seems that my view doesn't execute. it doesn't show me the link that i send to this page. it seems that only jQuery function is executed. i'm confused. how can i make both of them to execute(i mean jQuery function and then the url i set in this function which make my view to be executed.)

i don't know how to use serialize function. whenever i searched, they wrote that:

The .serialize() method creates a text string in standard URL-encoded notation and produces query string like "a=1&b=2&c=3&d=4&e=5.

i don't know when i have to use it, while i can access to my form field in request.Post["field name"]. and i don't know what should be the data which is in success: function(data) in my situation.

thank very much for your help.

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1 Answer

up vote 1 down vote accepted

You have to get and display the data from your ajax post function, where data is the response you render through your DJango server, for example:

t = Template("{{ link }}")
c = Context({"link": link})
t.render(c):

Your JS / jQuery should become something like this:

<script type="text/javascript">
    $(function() {
        $('#sendButton').click(function(e) {            
            e.preventDefault();
            var temp = $("#backupSubmit").serialize();
            validateForm();
            $.ajax({
                type: "POST",
                data: temp,
                url: 'backup/',

                success: function(data) {
                    // 'data' is the response from your server
                    // (=the link you want to generate from the server)

                    // Append the resulting link 'data' to your DIV '.response'
                    $(".response").html('<p>you can download it<a href="'+data+'">here</a></p>');

                    $(".response").show();
                }
            });
        });
    });
</script>

Hope this helps.

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1  
wait mate.. I'm a bit confused with your answer... XD The thing is: when you submit you click your sendButton, you receive ajax request in views.py, through your function. So, in this function, you'll have to generate your link and render it (without template: just "print" the link). Once it is rendered, this rendered information (=your link) is sent as data (the variable in your success function). You then add this new generated link to your DIV then it's ok. I'm not sure if I was clear :S... Tell me if I'm wrong or if it's not what you really want. –  Littm Sep 16 '12 at 6:20
    
thanks a lot. as you told data is the response from server, which i receive from views.py. what do you mean by "t = Template("{{ link }}") c = Context({"link": link}) t.render(c):"? i send link data to my html page via render_to_response, my question is i don't know where to receive it in html page? can you please tell me where exactly i can create data(use link)in html. if data should be "link data" received from views, so what is "data: temp"? why should i use "data: temp"? is always necessary to use serialize? sorry it's the first time i'm using this function :"> thank you for your help:) –  user1597122 Sep 16 '12 at 6:25
    
aha, you mean that whenever i pass a dictionary to my template(html file), (which is link in my example ), the parameter "data" automatically contains link, if i send to dictionary(link and s.th else), "data" contains both? –  user1597122 Sep 16 '12 at 6:30
    
Normally data contains automatically the answer that is "printed" by the server. So, it can only be a a string. –  Littm Sep 16 '12 at 6:35
1  
I think you just simply need to render / "print" your link, in your django function which is supposed to answer to the ajax request. –  Littm Sep 16 '12 at 6:41
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