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'm trying to use ajax file upload plugin(file uploader plugin) to upload a file to node.js server. This is my client side code to initialize plugin:

$(function() {
    /* dom ready */ 
  var uploader = new qq.FileUploader({
    // pass the dom node (ex. $(selector)[0] for jQuery users)
    element: document.getElementById('uploader'),
    // path to server-side upload script
    action: '/newitem',
    allowedExtensions: ['jpg', 'jpeg', 'png', 'gif'],
    sizeLimit: 10000000
});
});

My server code is

  app.post('/newitem',function(req, res) {
      if(req.xhr) {
        console.log('Uploading...');
        var fName = req.header('x-file-name');
        var fSize = req.header('x-file-size');
        var fType = req.header('x-file-type');
        var ws = fs.createWriteStream('./'+fName)

        req.on('data', function(data) {
            console.log('DATA');
            ws.write(data);
        });
        req.on('end', function() {
            console.log('All Done!!!!');
            res.writeHead(200, { 'Content-Type': 'text/html' }); 
            res.end();
        });
    }

        });

My problem is that I can't get the progress updated and the uploader gives failed result for uploads while upload success. I think this is related to ajax server response Am I right? How could I fix it?

Thanks

share|improve this question
    
it is bad practice to use filenames from client request. you cannot trust client. –  Hitesh Chavda Oct 18 '12 at 11:33

1 Answer 1

up vote 1 down vote accepted

Change it with

   req.on('end', function() {
      res.writeHead(200, { 'Content-Type': 'application/json' }); 
      res.end(JSON.stringify({
          success: true
      }));
  });
share|improve this answer

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.