I'm creating a JSP/Servlet web application and I'd like to upload a file to a Servlet via Ajax. How would I go about doing this? I'm using jQuery.

I've done so far:

<form class="upload-box">
    <input type="file" id="file" name="file1" />
    <span id="upload-error" class="error" />
    <input type="submit" id="upload-button" value="upload" />
</form>

With this jQuery:

$(document).on("#upload-button", "click", function() {
    $.ajax({
        type: "POST",
        url: "/Upload",
        async: true,
        data: $(".upload-box").serialize(),
        contentType: "multipart/form-data",
        processData: false,
        success: function(msg) {
            alert("File has been uploaded successfully");
        },
        error:function(msg) {
            $("#upload-error").html("Couldn't upload file");
        }
    });
});

However, it doesn't appear to send the file contents.

up vote 19 down vote accepted

To the point, as of the current XMLHttpRequest version 1 as used by jQuery, it is not possible to upload files using JavaScript through XMLHttpRequest. The common workaround is to let JavaScript create a hidden <iframe> and submit the form to it instead so that the impression is created that it happens asynchronously. That's also exactly what the majority of the jQuery file upload plugins are doing such as jQuery Form plugin (example here).

Assuming that your JSP with the HTML form is rewritten in such way so that it's not broken when the client has JS disabled (as you have now...), like below:

<form id="upload-form" class="upload-box" action="/Upload" method="post" enctype="multipart/form-data">
    <input type="file" id="file" name="file1" />
    <span id="upload-error" class="error">${uploadError}</span>
    <input type="submit" id="upload-button" value="upload" />
</form>

Then it's with help of jQuery Form plugin just a matter of

<script src="jquery.js"></script>
<script src="jquery.form.js"></script>
<script>
    $(function() {
        $('#upload-form').ajaxForm({
            success: function(msg) {
                alert("File has been uploaded successfully");
            },
            error: function(msg) {
                $("#upload-error").text("Couldn't upload file");
            }
        });
    });
</script>

As to the servlet side, no special stuff needs to be done here. Just implement it exactly the same way as you would do when not using Ajax: How to upload files to server using JSP/Servlet?

You'll only need an additional check in the servlet if the X-Requested-With header equals to XMLHttpRequest or not, so that you know how what kind of response to return for the case that the client has JS disabled (as of now, it are mostly the older mobile browsers which have JS disabled).

if ("XMLHttpRequest".equals(request.getHeader("X-Requested-With"))) {
    // Return ajax response (e.g. write JSON or XML).
} else {
    // Return regular response (e.g. forward to JSP).
}

Note that the relatively new XMLHttpRequest version 2 is capable of sending a selected file using the new File and FormData APIs. See also HTML5 File Upload to Java Servlet and sending a file as multipart through xmlHttpRequest.

  • Thanks for nice solution.... – Aniket Aug 11 '13 at 17:52
  • @BalusC any idea about XMLHttpRequest version 1 ? I mean where new FormData() dont work.. see developer.mozilla.org/en-US/docs/Web/API/… – agpt Jan 7 '14 at 8:07
  • @Aman: uhh .. just read the answer? O_o – BalusC Jan 7 '14 at 8:20
  • @BalusC I got your point :).. ah let me come to the point.. I was using same plugin for IE 8 and 9 but no response, it says NO Transport.. any idea ? – agpt Jan 7 '14 at 8:23

This code works fine for me :

$('#fileUploader').on('change', uploadFile);


function uploadFile(event)
	{
	    event.stopPropagation(); 
	    event.preventDefault(); 
	    var files = event.target.files; 
	    var data = new FormData();
	    $.each(files, function(key, value)
	    {
	        data.append(key, value);
	    });
	    postFilesData(data); 
	 }
	
function postFilesData(data)
	{
	 $.ajax({
        url: 'yourUrl',
        type: 'POST',
        data: data,
        cache: false,
        dataType: 'json',
        processData: false, 
        contentType: false, 
        success: function(data, textStatus, jqXHR)
        {
        	//success
        },
        error: function(jqXHR, textStatus, errorThrown)
        {
            console.log('ERRORS: ' + textStatus);
        }
	    });
	}
<form method="POST" enctype="multipart/form-data">
	<input type="file" name="file" id="fileUploader"/>
</form>

@Monsif's code works well if the form has only file type inputs, if the there are some other inputs other then file type, then they get lost. So, instead of copying each form data and appending them to FormData object, the original form itself can be given to the constructor.

Regarding the @Monsif's code and https://www.new-bamboo.co.uk/blog/2012/01/10/ridiculously-simple-ajax-uploads-with-formdata/ post, I came out with the following code which worked for me. I hope it helps someone else.

<script type="text/javascript">
        var files = null; // when files input changes this will be initiliazed.
        $(function() {
            $('#form2Submit').on('submit', uploadFile);
    });

        function uploadFile(event) {
            event.stopPropagation();
            event.preventDefault();
            //var files = files;
            var form = document.getElementById('form2Submit');
            var data = new FormData(form);
            postFilesData(data);
}

        function postFilesData(data) {
            $.ajax({
                url :  'yourUrl',
                type : 'POST',
                data : data,
                cache : false,
                dataType : 'json',
                processData : false,
                contentType : false,
                success : function(data, textStatus, jqXHR) {
                    alert(data);
                },
                error : function(jqXHR, textStatus, errorThrown) {
                    alert('ERRORS: ' + textStatus);
                }
            });
        }
</script>

The html code can be something like following:

<form id ="form2Submit" action="yourUrl">
  First name:<br>
  <input type="text" name="firstname" value="Mickey">
  <br>
  Last name:<br>
  <input type="text" name="lastname" value="Mouse">
  <br>
<input id="fileSelect" name="fileSelect[]" type="file" multiple accept=".xml,txt">
<br>
  <input type="submit" value="Submit">
</form>

This code works for me.

Used commons io.jar & commons file upload.jar and the jQuery form plugin

<script>
    $(function() {
        $('#upload-form').ajaxForm({
            success: function(msg) {
                alert("File has been uploaded successfully");
            },
            error: function(msg) {
                $("#upload-error").text("Couldn't upload file");
            }
        });
    });
</script>
<form id="upload-form" class="upload-box" action="upload" method="POST" enctype="multipart/form-data">
    <input type="file" id="file" name="file1" />
    <span id="upload-error" class="error">${uploadError}</span>
    <input type="submit" id="upload-button" value="upload" />
</form>

 boolean isMultipart = ServletFileUpload.isMultipartContent(request);

        if (isMultipart) {
            // Create a factory for disk-based file items
            FileItemFactory factory = new DiskFileItemFactory();

            // Create a new file upload handler
            ServletFileUpload upload = new ServletFileUpload(factory);

            try {
                // Parse the request
                List items = upload.parseRequest(request);
                Iterator iterator = items.iterator();
                while (iterator.hasNext()) {
                    FileItem item = (FileItem) iterator.next();
                    if (!item.isFormField()) {
                        String fileName = item.getName();    
                        String root = getServletContext().getRealPath("/");
                        File path = new File(root + "../../web/Images/uploads");
                        if (!path.exists()) {
                            boolean status = path.mkdirs();
                        }

                        File uploadedFile = new File(path + "/" + fileName);
                        System.out.println(uploadedFile.getAbsolutePath());
                        item.write(uploadedFile);
                    }
                }
            } catch (FileUploadException e) {
                e.printStackTrace();
            } catch (Exception e) {
                e.printStackTrace();
            }
        }
    }



enter code here

protected by BalusC Dec 23 '16 at 21:10

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