82

Is there a way to receive multiple uploaded files with Flask? I've tried the following:

<form method="POST" enctype="multipart/form-data" action="/upload">
  <input type="file" name="file[]" multiple="">
  <input type="submit" value="add">
</form>

And then printed the contents of request.files['file']:

@app.route('/upload', methods=['POST'])
def upload():
  if not _upload_dir:
    raise ValueError('Uploads are disabled.')

  uploaded_file = flask.request.files['file']
  print uploaded_file
  media.add_for_upload(uploaded_file, _upload_dir)
  return flask.redirect(flask.url_for('_main'))

If I upload multiple files, it only prints the first file in the set:

<FileStorage: u'test_file.mp3' ('audio/mp3')>  

Is there a way to receive multiple files using Flask's built-in upload handling? Thanks for any help!

1
  • 1
    One can skip brackets in "file[]", name="file" is ok to use. Feb 19, 2019 at 14:08

4 Answers 4

133

You can use method getlist of flask.request.files, for example:

@app.route("/upload", methods=["POST"])
def upload():
    uploaded_files = flask.request.files.getlist("file[]")
    print uploaded_files
    return ""
10
  • 1
    I tried this but it says 'flask' is not defined. where am I going wrong? what are the modules I need to import? Jul 23, 2013 at 4:40
  • 5
    from flask import request
    – Temere
    Nov 30, 2013 at 0:19
  • 20
    the square brackets are not a must.
    – simanacci
    Jul 28, 2016 at 12:22
  • 2
    Doesn't work without square brackets for me on Flask 0.12.2
    – boycy
    Oct 31, 2017 at 15:11
  • 3
    With Flask 1.0.2 I was getting an empty list with square brackets included, and correct file list when not included.
    – Liam
    Aug 22, 2018 at 5:50
31
@app.route('/upload', methods=['GET','POST'])
def upload():
    if flask.request.method == "POST":
        files = flask.request.files.getlist("file")
        for file in files:
            file.save(os.path.join(app.config['UPLOAD_FOLDER'], file.filename))

It works for me.

for UPLOAD_FOLDER if you need add this just after app = flask.Flask(name)

UPLOAD_FOLDER = 'static/upload'
app.config['UPLOAD_FOLDER'] = UPLOAD_FOLDER
15

Using Flask 1.0.2+:

files = request.files.getlist("images")

Where images is the key of the key/value pair. With the Value being the multiple images.

1
  • 3
    Thanks! And as it may help others prevent some searching, note that file.filename gives the name of the file for each file in files. Feb 24, 2019 at 8:57
8

this is a working solution for flask version '1.0.2':

images = request.files.to_dict() #convert multidict to dict
for image in images:     #image will be the key 
    print(images[image])        #this line will print value for the image key
    file_name = images[image].filename
    images[image].save(some_destination)

basically, images[image] has an image file with save function added to it Now do whatever you like to do with the data.

4
  • to_dict doesn't get list of image.
    – TomSawyer
    Feb 22, 2021 at 16:36
  • 1
    @TomSawyer Which flask version are you using? can you put print(type(request.files)) in your code and see what is the type of request.files. If it is multidict then to_dict method should give you a dictionary object in return. Feb 23, 2021 at 18:07
  • 1
    @Jean-François Fabre This is a workig solution for flask 2.0.1 too, but to_dict doesn't seem to the the whole list of files when I use FormData in JS. It only fetches the first file, Anything I am doing wrong? Nov 17, 2021 at 4:50
  • @collinsmarra before the for loop print the images and see what you are getting I am using this code in many projects and it returns me one file or more that one file based on what i send from client side. If possible check the code on your client side JS. You might find a clue there. Dec 16, 2021 at 4:54

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