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This question already has an answer here:

The XMLHttpRequest Level 2 standard (still a working draft) defines the FormData interface. This interface enables appending File objects to XHR-requests (Ajax-requests).

Btw, this is a new feature - in the past, the "hidden-iframe-trick" was used (read about that in my other question).

This is how it works (example):

var xhr = new XMLHttpRequest(),
    fd = new FormData();

fd.append( 'file', input.files[0] );
xhr.open( 'POST', 'http://example.com/script.php', true );
xhr.onreadystatechange = handler;
xhr.send( fd );

where input is a <input type="file"> field, and handler is the success-handler for the Ajax-request.

This works beautifully in all browsers (again, except IE).

Now, I would like to make this functionality work with jQuery. I tried this:

var fd = new FormData();    
fd.append( 'file', input.files[0] );

$.post( 'http://example.com/script.php', fd, handler );

Unfortunately, that won't work (an "Illegal invocation" error is thrown - screenshot is here). I assume jQuery expects a simple key-value object representing form-field-names / values, and the FormData instance that I'm passing in is apparently incompatible.

Now, since it is possible to pass a FormData instance into xhr.send(), I hope that it is also possible to make it work with jQuery.


Update:

I've created a "feature ticket" over at jQuery's Bug Tracker. It's here: http://bugs.jquery.com/ticket/9995

I was suggested to use an "Ajax prefilter"...


Update:

First, let me give a demo demonstrating what behavior I would like to achieve.

HTML:

<form>
    <input type="file" id="file" name="file">
    <input type="submit">
</form>

JavaScript:

$( 'form' ).submit(function ( e ) {
    var data, xhr;

    data = new FormData();
    data.append( 'file', $( '#file' )[0].files[0] );

    xhr = new XMLHttpRequest();

    xhr.open( 'POST', 'http://hacheck.tel.fer.hr/xml.pl', true );
    xhr.onreadystatechange = function ( response ) {};
    xhr.send( data );

    e.preventDefault();
});

The above code results in this HTTP-request:

multipartformdata

This is what I need - I want that "multipart/form-data" content-type!


The proposed solution would be like so:

$( 'form' ).submit(function ( e ) {
    var data;

    data = new FormData();
    data.append( 'file', $( '#file' )[0].files[0] );

    $.ajax({
        url: 'http://hacheck.tel.fer.hr/xml.pl',
        data: data,
        processData: false,
        type: 'POST',
        success: function ( data ) {
            alert( data );
        }
    });

    e.preventDefault();
});

However, this results in:

wrongcontenttype

As you can see, the content type is wrong...

share|improve this question

marked as duplicate by BalusC ajax May 11 at 10:32

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
YES! this is a great idea! thanks for the info as well. I recently found a snippet that does this but it's not jQuery and I was wondering if jQuery could do it. This is more of an answer than a question to me. Keep us posted! – Stephen Aug 23 '11 at 20:37
    
Now if only I/we knew what to put in said prefilter. – George R Sep 6 '11 at 5:07
1  
Same situation here. Any more clues from anyone? – zaf Nov 23 '11 at 13:58
    
@zaf Setting processData:false is a step in the right direction (see pradeek's proposed solution). Now if I could manually set the "Content-Type" HTTP-request header... See my updated question for details. – Šime Vidas Nov 28 '11 at 16:52
5  
isn't your question answered here? stackoverflow.com/questions/5392344/… – Oleg Mikheev Nov 29 '11 at 9:24

10 Answers 10

up vote 448 down vote accepted
+100

I believe you could do it like this :

var fd = new FormData();    
fd.append( 'file', input.files[0] );

$.ajax({
  url: 'http://example.com/script.php',
  data: fd,
  processData: false,
  contentType: false,
  type: 'POST',
  success: function(data){
    alert(data);
  }
});

Setting processData to false lets you prevent jQuery from automatically transforming the data into a query string. See the docs for more info.

Setting the contentType to false is imperative, since otherwise jQuery will set it incorrectly.

share|improve this answer
    
Unfortunately, this results in the wrong "Content-Type" HTTP-request header being set. See my question for detailed explanation what I want to achieve and why your current solution doesn't satisfy. Maybe I can set the Content-Type manually? – Šime Vidas Nov 28 '11 at 16:50
6  
Yes,I believe you could manually set the contentType to 'multipart/form-data' by adding a key-value pair in $.ajax argument. – pradeek Nov 29 '11 at 15:05
    
Hi @pradeek, we tried this solution here (stackoverflow.com/questions/10215425/…), but it wasn't clear how to pass the image data in the body of the POST request. Any clues? Thanks! – Crashalot Apr 19 '12 at 1:18
    
@Crashalot Can you be clear as to what you are trying to do? This question involves uploading a file whereas the one you've linked to involves sending canvas data as an image to the server. – pradeek Apr 19 '12 at 3:25
1  
@pradeek works perfectly as demonstrated! – Cu7l4ss Oct 11 '12 at 12:42

There are a few yet to be mentioned techniques available for you. Start with setting the contentType property in your ajax params.

Building on pradeek's example:

$('form').submit(function (e) {
    var data;

    data = new FormData();
    data.append('file', $('#file')[0].files[0]);

    $.ajax({
        url: 'http://hacheck.tel.fer.hr/xml.pl',
        data: data,
        processData: false,
        type: 'POST',

        // This will override the content type header, 
        // regardless of whether content is actually sent.
        // Defaults to 'application/x-www-form-urlencoded'
        contentType: 'multipart/form-data', 

        //Before 1.5.1 you had to do this:
        beforeSend: function (x) {
            if (x && x.overrideMimeType) {
                x.overrideMimeType("multipart/form-data");
            }
        },
        // Now you should be able to do this:
        mimeType: 'multipart/form-data',    //Property added in 1.5.1

        success: function (data) {
            alert(data);
        }
    });

    e.preventDefault();
});

In some cases when forcing jQuery ajax to do non-expected things, the beforeSend event is a great place to do it. For a while people were using beforeSend to override the mimeType before that was added into jQuery in 1.5.1. You should be able to modify just about anything on the jqXHR object in the before send event.

share|improve this answer
3  
There is a problem with this: the spec requires that a multipart content-type includes the boundary parameter (specifically, it’s stated as a required parameter). – romkyns Feb 29 '12 at 19:58
    
@romkyns I was coding this from the top of my head. If you have some experience/knowledge that I don't, please go ahead and edit the answer! Now that you mentioned it, a quick search turned up this: stackoverflow.com/questions/5933949/… which should get you going in the right direction. (You could take from that example and incorporate it into the above jQuery if you are into that.) – BenSwayne Mar 1 '12 at 23:43
    
Actually the currently accepted answer (that I edited to add a crucial fix) does the right thing, at last. This was tricky :) – romkyns Mar 2 '12 at 14:44
    
I had high hopes for this solution, but my $_FILES is still NULL... – socca1157 Aug 27 '14 at 18:58

You can use the $.ajax beforeSend event to manipulate the header.

beforeSend: function(xhr) { 
    xhr.setRequestHeader('Content-Type', 'multipart/form-data');
}

See this link for additional information: http://msdn.microsoft.com/en-us/library/ms536752(v=vs.85).aspx

share|improve this answer

I think you cant do it in ajax to support all the browsers, I might say good to check this ajax uploader plugin to see how they have done it http://valums.com/ajax-upload/

share|improve this answer

If you want to submit files using ajax use "jquery.form.js" This submits all form elements easily.

Samples http://jquery.malsup.com/form/#ajaxSubmit

rough view :

<form id='AddPhotoForm' method='post' action='../photo/admin_save_photo.php' enctype='multipart/form-data'>


<script type="text/javascript">
function showResponseAfterAddPhoto(responseText, statusText)
{ 
    information= responseText;
    callAjaxtolist();
    $("#AddPhotoForm").resetForm();
    $("#photo_msg").html('<div class="album_msg">Photo uploaded Successfully...</div>');        
};

$(document).ready(function(){
    $('.add_new_photo_div').live('click',function(){
            var options = {success:showResponseAfterAddPhoto};  
            $("#AddPhotoForm").ajaxSubmit(options);
        });
});
</script>
share|improve this answer

JavaScript:

 function submitForm() {
                var data1 = new FormData($('input[name^="file"]'));
                $.each($('input[name^="file"]')[0].files, function(i, file) {
                data1.append(i, file);
                });

    $.ajax({
      url: "<?php echo base_url() ?>employee/dashboard2/test2",
      type: "POST",
      data: data1,
      enctype: 'multipart/form-data',
      processData: false,  // tell jQuery not to process the data
      contentType: false   // tell jQuery not to set contentType
    }).done(function(data) {
        console.log("PHP Output:");
        console.log( data );
    });
    return false;
}

PHP:

public function upload_file(){

    foreach ($_FILES as $key ) {

          $name =time().$key['name'];

          $path='upload/'.$name;

          @move_uploaded_file($key['tmp_name'],$path);

    }
share|improve this answer

Instead of - fd.append( 'userfile', $('#userfile')[0].files[0]);

Use - fd.append( 'file', $('#userfile')[0].files[0]);

share|improve this answer

You can send the FormData object in ajax request using the following code,

$("form#formElement").submit(function(){
    var formdata = new FormData($(this)[0]);
});

This is very similar to the accepted answer but an actual answer for the question topic. This will submit the form elements automatically in the FormData and you don't need to manually append the data to FormData variable.

The ajax method looks like this,

$("form#formElement").submit(function(){
    var formdata = new FormData($(this)[0]);
    //append some non-form data also
    formData.append('other_data',$("#someInputData").val());
    $.ajax({
        type: "POST",
        url: postDataUrl,
        data: formData,
        processData: false,
        contentType: false,
        dataType: "json",
        success: function(data, textStatus, jqXHR) {
           //process data
        },
        error: function(data, textStatus, jqXHR) {
           //process error msg
        },
});

You can also manually pass the form element inside the FormData object as parameter like this

var formElem = $("#formId");
var formdata = new FormData(form[0]);

Hope it helps. ;)

share|improve this answer

The best documentation and example I found was here https://developer.mozilla.org/en-US/docs/Web/Guide/Using_FormData_Objects

share|improve this answer

I do it like this and it's work for me, I hope this will help :)

   <div id="data">
        <form>
            <input type="file" name="userfile" id="userfile" size="20" />
            <br /><br />
            <input type="button" id="upload" value="upload" />
        </form>
    </div>
  <script>
        $(document).ready(function(){
                $('#upload').click(function(){

                    console.log('upload button clicked!')
                    var fd = new FormData();    
                    fd.append( 'userfile', $('#userfile')[0].files[0]);

                    $.ajax({
                      url: 'upload/do_upload',
                      data: fd,
                      processData: false,
                      contentType: false,
                      type: 'POST',
                      success: function(data){
                        console.log('upload success!')
                        $('#data').empty();
                        $('#data').append(data);

                      }
                    });
                });
        });
    </script>   
share|improve this answer
    
How is this different from the accepted answer? – Šime Vidas Mar 28 '15 at 16:04
    
fd.append( 'userfile', $('#userfile')[0].files[0]); THIS is the different you need to add the id's for input file to work. – talalalshehri Mar 29 '15 at 14:36

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