Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a file upload function and using the slice api from html5, I slice each file into 1MB chunk, but the final result cause the file to be corrupted. sometimes, the end result smaller than the original file, and sometimes even though it's the correct size, I still can't open it. anyone have any idea? or solution? This is the part for slicing

        var uploaders = [];
        var i = 0;
        $(document).ready(function() {
            var progress = document.querySelector('progress');
            var bars = document.querySelector('#bars'); 
        });        

        //function for after the button is clicked, slice the file 
        //and call upload function
        function sendRequest() {       
            //clean the screen
            bars.innerHTML = '';
            var blob = document.getElementById('fileToUpload').files[0];
            var originalFileName = blob.name;
            const BYTES_PER_CHUNK = 1 * 1024 * 1024; // 10MB chunk sizes.
            const SIZE = blob.size;

            var start = 0;
            var end = BYTES_PER_CHUNK;

            while( start < SIZE ) {                    
                if (blob.webkitSlice) {
                  var chunk = blob.webkitSlice(start, end);
                } else if (blob.mozSlice) {
                  var chunk = blob.mozSlice(start, end);
                }       

                uploadFile(chunk, originalFileName);
                start = end;
                end = start + BYTES_PER_CHUNK;
            }
        }

        function uploadFile(blobFile, fileName) {
            var progress = document.createElement('progress');
            progress.min = 0;
            progress.max = 100;
            progress.value = 0;
            bars.appendChild(progress);   

            var fd = new FormData();
            fd.append("fileToUpload", blobFile);

            var xhr = new XMLHttpRequest();                
            xhr.open("POST", "upload.php"+"?"+"file="+fileName + i, true);
            i++;

            xhr.onload = function(e) {
                //make sure if finish progress bar at 100%
                progress.value = 100;

                //counter if everything is done using stack
                uploaders.pop();

                if (!uploaders.length) {
                    bars.appendChild(document.createElement('br'));
                    bars.appendChild(document.createTextNode('DONE :)'));
                }                  
            };

            // Listen to the upload progress for each upload.   
            xhr.upload.onprogress = function(e) {;
                if (e.lengthComputable) {
                    progress.value = (e.loaded / e.total) * 100;
                }
            };                 

            uploaders.push(xhr);
            xhr.send(fd);
        }      

and this is the php file for accepting the binary chunk

<?php

$target_path = "uploads/";
$tmp_name = $_FILES['fileToUpload']['tmp_name'];
$size = $_FILES['fileToUpload']['size'];
$name = $_FILES['fileToUpload']['name'];

$originalName = $_GET['file1'];

print_r("*******************************************\n");

print_r($originalName);
print_r("\n");

print_r($_FILES);
print_r("\n");

print_r("*******************************************\n");
$target_file = $target_path . basename($name);

//Result File
$complete = $originalName;
$com = fopen("uploads/".$complete, "ab");
error_log($target_path);

if ( $com ) {
    // Read binary input stream and append it to temp file
    $in = fopen($tmp_name, "rb");
    if ( $in ) {
        while ( $buff = fread( $in, 1048576 ) ) {
            fwrite($com, $buff);
        }   
    }
    fclose($in);
    fclose($com);
}


?>

I think I did something wrong when putting the file together on the server with my php code (like I don't put it in order or something), but anyone know how to do this or best practice maybe? Instead of uploading the file and then combine it, maybe save it in memory first before actually write it into a file.

share|improve this question
    
Please provide your uploadProgress function. What is the bars variable (a div?) It is not defined in your script. You have also omitted what the uploaders variable is (is it an array?) –  Martin Mar 15 '12 at 20:34
    
@Martin I just updated the code, that's pretty much the whole code I have.. minus the html part which is just a normal html tag for file upload –  Harts Mar 15 '12 at 22:02

1 Answer 1

up vote 8 down vote accepted
+50

Upload multiple chunks of a file at once, then merge at the end.

const BYTES_PER_CHUNK = 1024 * 1024; // 1MB chunk sizes.
var slices;
var slices2;

function sendRequest() {
    var xhr;
    var blob = document.getElementById('fileToUpload').files[0];

    var start = 0;
    var end;
    var index = 0;

    // calculate the number of slices we will need
    slices = Math.ceil(blob.size / BYTES_PER_CHUNK);
    slices2 = slices;

    while(start < blob.size) {
        end = start + BYTES_PER_CHUNK;
        if(end > blob.size) {
            end = blob.size;
        }

        uploadFile(blob, index, start, end);

        start = end;
        index++;
    }
}

function uploadFile(blob, index, start, end) {
    var xhr;
    var end;
    var fd;
    var chunk;
    var url;

    xhr = new XMLHttpRequest();

    xhr.onreadystatechange = function() {
        if(xhr.readyState == 4) {
            if(xhr.responseText) {
                alert(xhr.responseText);
            }

            slices--;

            // if we have finished all slices
            if(slices == 0) {
                mergeFile(blob);
            }
        }
    };

    if (blob.webkitSlice) {
        chunk = blob.webkitSlice(start, end);
    } else if (blob.mozSlice) {
        chunk = blob.mozSlice(start, end);
    }

    fd = new FormData();
    fd.append("file", chunk);
    fd.append("name", blob.name);
    fd.append("index", index);

    xhr.open("POST", "upload.php", true);
    xhr.send(fd);
}

function mergeFile(blob) {
    var xhr;
    var fd;

    xhr = new XMLHttpRequest();

    fd = new FormData();
    fd.append("name", blob.name);
    fd.append("index", slices2);

    xhr.open("POST", "merge.php", true);
    xhr.send(fd);
}

Collect the pieces using upload.php:

if(!isset($_REQUEST['name'])) throw new Exception('Name required');
if(!preg_match('/^[-a-z0-9_][-a-z0-9_.]*$/i', $_REQUEST['name'])) throw new Exception('Name error');

if(!isset($_REQUEST['index'])) throw new Exception('Index required');
if(!preg_match('/^[0-9]+$/', $_REQUEST['index'])) throw new Exception('Index error');

if(!isset($_FILES['file'])) throw new Exception('Upload required');
if($_FILES['file']['error'] != 0) throw new Exception('Upload error');

$target = "uploads/" . $_REQUEST['name'] . '-' . $_REQUEST['index'];

move_uploaded_file($_FILES['file']['tmp_name'], $target);

// Might execute too quickly.
sleep(1);

Merge the pieces using merge.php:

if(!isset($_REQUEST['name'])) throw new Exception('Name required');
if(!preg_match('/^[-a-z0-9_][-a-z0-9_.]*$/i', $_REQUEST['name'])) throw new Exception('Name error');

if(!isset($_REQUEST['index'])) throw new Exception('Index required');
if(!preg_match('/^[0-9]+$/', $_REQUEST['index'])) throw new Exception('Index error');

$target = "uploads/" . $_REQUEST['name'];
$dst = fopen($target, 'wb');

for($i = 0; $i < $_REQUEST['index']; $i++) {
    $slice = $target . '-' . $i;
    $src = fopen($slice, 'rb');
    stream_copy_to_stream($src, $dst);
    fclose($src);
    unlink($slice);
}

fclose($dst);
share|improve this answer
    
"I rewrote the function to upload the first chunk, then upload the second chunk as a response to xhr.onreadystatechange etc" if we did that, isn't that lose some of the purpose for chunking, instead of upload it simultaneously together.. you upload one by one. which will cause slower uploading. –  Harts Mar 15 '12 at 22:24
    
If you intend to upload multiple parts of the same file at once, you need to also tell the server which part is which, as they could arrive at the same time or out of order. The server would need to hold each piece until it could be put together. It is a fair bit more complicated. –  Martin Mar 15 '12 at 22:34
    
That's the type of answer I am looking for. I need to upload multiple parts of the same file at once, or even more complicated for my project, multiple part of different files at once.. what I am looking for is how to combine the pieces in order, and is there anyway to hold it in server memory first or something.. –  Harts Mar 15 '12 at 22:57
    
I have modified my answer –  Martin Mar 15 '12 at 23:49

Your Answer

 
discard

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.