Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am working with play framework 2.1.2. I want to work with Ajax in play framework.

What am i doing? i am uploading multiple files and i want that if user didn't choose file for upload then i want some message come like 'u didn't choose any file' for uploading and if user choose files for upload and click on upload that time i want that some message come like file has been uploaded

my view part is:

@form(action = routes.upload.up, 'enctype -> "multipart/form-data",'_id->"he") {
            <input type="file" name="file" accept="application/pdf" multiple="multiple"><br/> 
            <input type="submit" id="if" value="upload and extract"> 

            }

and getting data.

file upload form

now when user click on upload button that time if user chooses file for upload that time after file upload i want to print message file has been uploaded and if user didn't choose file that time i want to show message select a file.

i want to send message data that i will send after file processing in controller part. what message will i get after that controller part that message i want to send to that Ajax.

Controller part is:

Http.MultipartFormData body = request().body().asMultipartFormData();
        List<FilePart> resourceFiles = body.getFiles();


        if (!resourceFiles.isEmpty()) {

            for (FilePart upload : resourceFiles) {

                String targetPath = "/home/rahul/Documents/upload/"
                        + upload.getFilename();
                upload.getFile().renameTo(new File(targetPath));
            }
            return ok("File uploaded ");  //i want to print this result as a message 
        } else {
            return forbidden(); 
        }
    }

i went through some codes but i didn't getting enough solution.

Give me some idea to go through ajax.

share|improve this question
    
I'm still reading up on all this, but you might find Handling asynchronous results of some use –  MadProgrammer Aug 28 '13 at 6:48

1 Answer 1

Few weeks ago I implemented uploading files with ajax with usage of jquery-file-upload. I might post my solution and I hope you will be satisfied. This example is for simple 1 file upload but it can be extended.

Scripts

<script src="@routes.Assets.at("javascripts/jquery-file-upload/jquery.iframe-transport.js")" type="text/javascript"></script>
<script src="@routes.Assets.at("javascripts/jquery-file-upload/vendor/jquery.ui.widget.js")" type="text/javascript"></script>
<script src="@routes.Assets.at("javascripts/jquery-file-upload/jquery.fileupload.js")" type="text/javascript"></script>

View

<input type="file" id="@d" name="@d" data-url="@code.routes.Ext.upload()"  />
<script type="text/javascript">
    $(document).ready(function () {
        $('#@d').fileupload({
            replaceFileInput: true,
            done: function (e, data) {
                //Here you got server response.
                console.log(data);
                var d = data.result;
                alert(d);
                $('#img1').attr("src",d);
            }
        });
    });
</script>

Where @d is your view param.

Controller

In your code you can use return ok("File uploaded ") to response for client.

Full source code can be found here (Scala), here, here and here

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.