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Forum Discussion
jmccolgan93
5 years agoExplorer | Level 3
Uploaded Files are Currupt (Flask, Python)
Hey, guys so I'm experimenting with the Dropbox python API using Flask. I managed to upload files but all the files I've uploaded are only 16 bytes in size and are unable to be opened. here's the code I'm using.
HTML Form:
<div style="text-align: center" class="form"> <form class="needs-validation" novalidate action="/uploadtest" method="POST" enctype="multipart/form-data"> <div class="col-md-12"> <div class="form-group"> <label for="name">Choose file</label> <input type="file" accept=".xlsx, .jpg" name="file" id="fileToUpload" class="form-control" placeholder="John Smith" required> <div class="valid-feedback"> Looks good! </div> <div class="invalid-feedback"> Please choose a .xlsx file. </div> </div> </div> <button type="submit" class="btn btn-success" value="">Submit</button> </form> </div>
Python Flask Route
@app.route('/uploadtest', methods=['POST', 'GET']) def get_dropbox_files(): if request.method == 'POST': uploadedfile = request.files['file'] client = dbx_client f = secure_filename(uploadedfile.filename) path="/nameinlights/" + f dbx_client.files_upload(f.encode(), path) flash("Added" + " " + f + " " + "to Name in Lights Folder", 'success') return render_template('uploadtest.html', file_list=file_list)
Hi!
When you call
file_upload
, you're actually uploading the file's name as a string. Each file is coming out to 16 bytes because the strings are being generated bysecure_filename
and are probably a standard length.You can fix it by changing the first variable you're passing to
file_upload
.dbx_client.files_upload(f.encode(), path)
should be
dbx_client.files_upload(uploadedfile.encode(), path)
It looks like you're just working with the filename
- TaylorKrusenDropbox Staff
Hi!
When you call
file_upload
, you're actually uploading the file's name as a string. Each file is coming out to 16 bytes because the strings are being generated bysecure_filename
and are probably a standard length.You can fix it by changing the first variable you're passing to
file_upload
.dbx_client.files_upload(f.encode(), path)
should be
dbx_client.files_upload(uploadedfile.encode(), path)
It looks like you're just working with the filename
- jmccolgan93Explorer | Level 3
thanks man! i had to change "encode()" for "read()" thanks for the help man!
dbx_client.files_upload(uploadedfile.read(), path)
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