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My view is HTML 5. I'm using FormData to make a AJAX 2 POST to a Servlet. Inside the servlet i'm trying to read request parameters. I can't see any parameters. However, Google Chrome Dev console shows the request payload. How can I get the same in Servlet code? Any help will be appreciated. Here's the code.

JS code

var xhr = new XMLHttpRequest();
var formData = new FormData();
formData.append('firstName', 'ABC');
formData.append('lastName', 'XYZ');

xhr.open("POST", targetLocation, true);
xhr.send(formData);

Servlet code

out.println("Hello! "+ request.getParameter("firstName")+ " "+ request.getParameter("lastName")+ ", thanks for sending your feedback." );

Google Chrome Console

Content-Disposition: form-data; name="firstName"
XYZ
Content-Disposition: form-data; name="lastName"
ABC
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Provide some more code of doPost() method of Servlet. –  Hardik Mishra Apr 24 '12 at 6:06

1 Answer 1

up vote 5 down vote accepted

The HTML5 FormData API sends a multipart/form-data request. It's initially designed to be able to upload files by ajax, with the new version 2 XMLHttpRequest. Uploading files wasn't possible with the previous version.

The request.getParameter() by default recognizes application/x-www-form-urlencoded requests only. But you're sending a multipart/form-data request. You need to annotate your servlet class with @MultipartConfig so that you can use request.getPart() instead.

Part firstName = request.getPart("firstName");
Part lastName = request.getPart("lastName");

For which you can collect the values by the following helper method:

private static String getValue(Part part) throws IOException {
    BufferedReader reader = new BufferedReader(new InputStreamReader(part.getInputStream(), "UTF-8"));
    StringBuilder value = new StringBuilder();
    char[] buffer = new char[1024];
    for (int length = 0; (length = reader.read(buffer)) > 0;) {
        value.append(buffer, 0, length);
    }
    return value.toString();
}

So,

String firstName = getValue(request.getPart("firstName"));
String lastName = getValue(request.getPart("lastName"));

Or, when you're still not on Servlet 3.0 yet, use Apache Commons FileUpload. For a more detailed answer on both approaches, see this: How to upload files in JSP/Servlet?

If you don't need to upload files at all, use the standard XMLHttpRequest approach. It's after all easier with request.getParameter() and so on.

share|improve this answer
    
HI Balus, Thanks for the post. Your answer was accurate and to the point. FormData is an overkill for my simple app. I think I'm better off with the simple XMLHttpRequest. But, I've a simple question, how do I send request parameters with xhr? I know there's a method called send() which takes input. How do I use it? –  user655577 Apr 24 '12 at 17:42
    
Construct an URL encoded query string. E.g. "name1=value1&name2=value2&name3=value3" and pass it to send(). However, much easier is to use jQuery. This saves you from writing XMLHttpRequest boilerplate yourself (and worrying about cross browser problems). See also the doc and examples: api.jquery.com/jQuery.post –  BalusC Apr 24 '12 at 17:47
    
Yes I got it. It's working . I like jQuery Framework because it can handle lot of boilerplate, as you mentioned. But, using jQuery how do I check something like this: if (typeof xhr.withCredentials === undefined) { // do something } else { //do something else } Since I don't have a xhr handle? –  user655577 Apr 24 '12 at 17:57
    
You're welcome. Since you're new here, please don't forget to mark the answer accepted whenever it helped (most) in solving the concrete problem. See also How does accepting an answer work? Do the same for questions you asked previously, whenever applicable. As to your new question, you could use beforeSend: function(xhr) {}); callback of $.ajax() for this, see also api.jquery.com/jQuery.ajax Ask a new question if you stucks. –  BalusC Apr 24 '12 at 18:02

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