Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

My problem is simple and complex same time:

Im tryin to upload files using jQuery fileUpload library with spring mvc controller as server side, but my files are being uploaded by one request each. What i want is posting them ALL in ONE request.

I have tried singleFileUploads: false option but its not working, if i pass 4 files to upload, the method responsible for handling the post is called 4 times.

Im using this form to post files:

<div class="upload-file-div">
    <b>Choose csv files to load</b> <input id="csvUpload" type="file"
    name="files[] "data-url="adminpanel/uploadCsv" multiple />
<div id="dropzoneCsv">Or drop files here</div>

<div id="progressCsv">
<div class="bar" style="width: 0%;"></div>

Jquery method to upload files:

                    singleFileUploads: false,
                    dataType : 'json',
                    done : function(e, data) {
                        $.each(data.result, function(index, file) {


                    progressall : function(e, data) {
                        var progress = parseInt(data.loaded / * 100,
                        $('#progressCsv .bar').css('width', progress + '%');

                    dropZone : $('#dropzoneCsv')

And handler method :

@RequestMapping(value = "/adminpanel/uploadCsv", method = RequestMethod.POST)
    public @ResponseBody
    List<FileMeta> uploadCsv(MultipartHttpServletRequest request, HttpServletResponse response) {

        // 1. build an iterator
        Iterator<String> itr = request.getFileNames();
        MultipartFile mpf = null;
        List<FileMeta> csvFiles = new ArrayList<FileMeta>();
        // 2. get each file
        while (itr.hasNext()) {

            // 2.1 get next MultipartFile
            mpf = request.getFile(;
            System.out.println(mpf.getOriginalFilename() + " uploaded! ");

            // 2.3 create new fileMeta
            FileMeta fileMeta = new FileMeta();
            fileMeta.setFileSize(mpf.getSize() / 1024 + " Kb");

            try {
                File dir = new File(Thread.currentThread().getContextClassLoader()
                if(!dir.exists()) dir.mkdirs();
                File newCSV = new File(dir+"\\"+ mpf.getOriginalFilename());
                else fileMeta.setExistsOnServer(true);
            } catch (IllegalStateException e1) {
                // TODO Auto-generated catch block
            } catch (IOException e1) {
                // TODO Auto-generated catch block

            // 2.4 add to files

        return csvFiles;

I would really need an assistance here :( Files should be loaded in one request, thats why im doing the iterator, but its just not working.

ps. Sorry for my terrible english :(

share|improve this question

1 Answer 1

up vote 4 down vote accepted

You may want to try Programmatic file upload instead. The send method will ensure only one request is issued.

Basically keep a filelist variable, update it everytime fileuploadadd callback happens, then use this filelist for the send method.

For example:

    var filelist = [];
    ... // your fileupload options
    }).on("fileuploadadd", function(e, data){
        for(var i = 0; i < data.files.length; i++){

        $('#form').fileupload('send', {files:filelist});


It is inspired by this question.

The reason I found it useful is even if you set singleFileUploads to false, if you do multiple individual selections, they will still be sent with individual requests each, as the author said himself in this GitHub issue

share|improve this answer
I suppose #button is referring to the button with that id, so if we had a submit button in the form... Should we remove the <form> tag and use the #button or there is a way for attaching the same action to the submit action in the form? Which is the right one? – madtyn Jan 12 at 9:30
@madtyn I went with the #button approach (i.e no <form> tag). Personally I seldom use the form tag with a submit button as it doesn't play well with many javascript calls. – xysun Jan 12 at 15:08
Ok. Thank you very much. – madtyn Jan 12 at 15:15

Your Answer


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.