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I am trying to upload a file to a server using curl and python flask. Below I have the code of how I have implemented it. Any ideas on what I am doing wrong.

curl -i -X PUT -F name=Test -F filedata=@SomeFile.pdf "http://localhost:5000/" 

@app.route("/", methods=['POST','PUT'])
def hello():
    file = request.files['Test']
    if file and allowed_file(file.filename):
        filename=secure_filename(file.filename)
        print filename

    return "Success"

The following is the error that the server sends back

<!DOCTYPE HTML PUBLIC "-//W3C//DTD HTML 3.2 Final//EN">
<title>400 Bad Request</title>
<h1>Bad Request</h1>
<p>The browser (or proxy) sent a request that this server could not understand.</p>

Thanks in advance.

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Your code works if you POST the data, e.g. curl -F "Test=@SomeFile.pdf" http://127.0.0.1:5000 which therefore narrows your problem down to how you're handling PUT requests in Flask. – Doobeh Jun 26 '13 at 20:31
    
I remember some thread which says that request.files does not work with PUT. Can you try request.data instead ? – codegeek Jun 26 '13 at 20:40
    
Your code looks good, what do you get if you try:curl -X PUT -F Test=@foo.txt localhost:5000 – snahor Jun 26 '13 at 20:44
    
@codegeek - it works just fine with either PUT or POST. – mata Jun 26 '13 at 21:25
    
@snahor how this command should look on Windows? '@foo.txt' is not working... curl.exe -X PUT -F Test=...?... localhost:5000 – Piotr Jul 1 '15 at 23:12
up vote 10 down vote accepted

Your curl command means you're transmitting two form contents, one file called filedata, and one form field called name. So you can do this:

file = request.files['filedata']   # gives you a FileStorage
test = request.form['name']        # gives you the string 'Test'

but request.files['Test'] doesn't exist.

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