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I am new to XMLHttpRequest and I have been using it as a AJAX file uploader using JavaScript's FormData().

The problem I am having is that it seems to upload fine, although I think it is not sending it to the right PHP file or my PHP is wrong because nothing is displayed in the folder where pictures should be.

At the moment, I don't know how to view the returned html data


$("#form").submit(function(event) {


    var form = $(this);
    var file = document.getElementById("file");
    var data = new FormData();

    var onerror = function(event) {
        alert("An error occoured!");
    var onprogressupdate = function(event) {

        if(event.lengthComputable) {

            var percent = event.loaded / * 100;



    var onreadystatechange = function(event) {

        if(request.status == 200 && request.readyState == 4) {



        else {
            alert("Alternative state and/or status");
            console.log("state: " + request.state); 
            console.log("readyState: " + request.readyState);


    for(var i = 0; i < file.files.length; i++)
        data.append('file[]', file.files[i]);

    $("#progress").html("Uploading files...");

    var request = new XMLHttpRequest();

    request.upload.addEventListener("error", onerror);
    request.upload.addEventListener("progress", onprogressupdate);
    request.upload.addEventListener("readystatechange", onreadystatechange);"post", "upload.php");
    request.setRequestHeader("Content-type", "multipart/form-data");


Upload page


    if(isset($_FILES["file"])) {

        $f = $_FILES["file"];
        $dir = "data";


        foreach($f["name"] as $k => $name) {

            $file = $dir."/".$name;

            if($f["error"][$k] == 0 && move_uploaded_file($f["tmp_name"][$k], $file)) {
                $uploaded[] = $file;



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Can you provide the server response (with firebug) ? – Antoine Jun 16 '13 at 21:33

2 Answers 2

up vote 4 down vote accepted

Don't set the content type, its set automatically.

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I removed it and that worked. Thanks to Jan as well for the help – ben Jun 16 '13 at 21:57
Wow this would be least expected. Can you explain why? – Jan Turoň Jun 16 '13 at 22:00
@JanTuroň multi-part/form-data content type requires a boundary – Musa Jun 16 '13 at 22:03

Create your FormData object with form element you want to send:

var data = new FormData(this);

instead of

var data = new FormData();

The syntax of the FormData is

new FormData (optional HTMLFormElement form)

without the argument, it is empty, see the reference.

share|improve this answer
OP used append to add files to the FormData object – Musa Jun 16 '13 at 21:59

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