239

How to send a multipart/form-data with requests in python? How to send a file, I understand, but how to send the form data by this method can not understand.

  • your question is not really clear. What do you want to achieve? Do you wish to send "multipart/form-data" without a file upload in the form? – Hans Then Sep 15 '12 at 17:53
  • 4
    The fact that files parameter is used to do both is a very bad API. I raised issue titled Sending multipart data - we need better API to fix this. If you agree that using files parameter to send mulitpart data is misleading at best please ask to change the API in the above issue. – Piotr Dobrogost Nov 10 '12 at 19:56
  • @PiotrDobrogost that issue is closed. Do not encourage people to comment on closed issues, relevant or otherwise. – Ian Stapleton Cordasco Feb 13 '13 at 16:36
  • 1
    Nevermind, I just realized your comment was posted before it was closed. I hate how StackOverflow doesn't keep things in chronological order. – Ian Stapleton Cordasco Feb 13 '13 at 16:43
  • check this answer stackoverflow.com/a/64586578/8826047 The boundary is important! – Sona Pochybova Oct 29 '20 at 7:22

10 Answers 10

210

Basically, if you specify a files parameter (a dictionary), then requests will send a multipart/form-data POST instead of a application/x-www-form-urlencoded POST. You are not limited to using actual files in that dictionary, however:

>>> import requests
>>> response = requests.post('http://httpbin.org/post', files=dict(foo='bar'))
>>> response.status_code
200

and httpbin.org lets you know what headers you posted with; in response.json() we have:

>>> from pprint import pprint
>>> pprint(response.json()['headers'])
{'Accept': '*/*',
 'Accept-Encoding': 'gzip, deflate',
 'Connection': 'close',
 'Content-Length': '141',
 'Content-Type': 'multipart/form-data; '
                 'boundary=c7cbfdd911b4e720f1dd8f479c50bc7f',
 'Host': 'httpbin.org',
 'User-Agent': 'python-requests/2.21.0'}

Better still, you can further control the filename, content type and additional headers for each part by using a tuple instead of a single string or bytes object. The tuple is expected to contain between 2 and 4 elements; the filename, the content, optionally a content type, and an optional dictionary of further headers.

I'd use the tuple form with None as the filename, so that the filename="..." parameter is dropped from the request for those parts:

>>> files = {'foo': 'bar'}
>>> print(requests.Request('POST', 'http://httpbin.org/post', files=files).prepare().body.decode('utf8'))
--bb3f05a247b43eede27a124ef8b968c5
Content-Disposition: form-data; name="foo"; filename="foo"

bar
--bb3f05a247b43eede27a124ef8b968c5--
>>> files = {'foo': (None, 'bar')}
>>> print(requests.Request('POST', 'http://httpbin.org/post', files=files).prepare().body.decode('utf8'))
--d5ca8c90a869c5ae31f70fa3ddb23c76
Content-Disposition: form-data; name="foo"

bar
--d5ca8c90a869c5ae31f70fa3ddb23c76--

files can also be a list of two-value tuples, if you need ordering and/or multiple fields with the same name:

requests.post(
    'http://requestb.in/xucj9exu',
    files=(
        ('foo', (None, 'bar')),
        ('foo', (None, 'baz')),
        ('spam', (None, 'eggs')),
    )
)

If you specify both files and data, then it depends on the value of data what will be used to create the POST body. If data is a string, only it willl be used; otherwise both data and files are used, with the elements in data listed first.

There is also the excellent requests-toolbelt project, which includes advanced Multipart support. It takes field definitions in the same format as the files parameter, but unlike requests, it defaults to not setting a filename parameter. In addition, it can stream the request from open file objects, where requests will first construct the request body in memory:

from requests_toolbelt.multipart.encoder import MultipartEncoder

mp_encoder = MultipartEncoder(
    fields={
        'foo': 'bar',
        # plain file object, no filename or mime type produces a
        # Content-Disposition header with just the part name
        'spam': ('spam.txt', open('spam.txt', 'rb'), 'text/plain'),
    }
)
r = requests.post(
    'http://httpbin.org/post',
    data=mp_encoder,  # The MultipartEncoder is posted as data, don't use files=...!
    # The MultipartEncoder provides the content-type header with the boundary:
    headers={'Content-Type': mp_encoder.content_type}
)

Fields follow the same conventions; use a tuple with between 2 and 4 elements to add a filename, part mime-type or extra headers. Unlike the files parameter, no attempt is made to find a default filename value if you don't use a tuple.

  • 4
    If files={} is used then headers={'Content-Type':'blah blah'} must not be used! – zaki Aug 14 '18 at 15:04
  • 6
    @zaki: indeed, bacause the multipart/form-data Content-Type must include the boundary value used to deliniate the parts in the post body. Not setting the Content-Type header ensures that requests sets it to the correct value. – Martijn Pieters Aug 14 '18 at 20:51
  • Important note: the request will only be sent as multipart/form-data if the value of files= is truthy, so if you need to send a multipart/form-data request but are not including any files, you can set a truthy but meaningless value such as {'':''}, and set data= with your request body. If you are doing this, don't provide the Content-Type header yourself; requests will set it for you. You can see the truth check here: github.com/psf/requests/blob/… – Daniel Situnayake Mar 13 '20 at 0:13
  • @DanielSitunayake there is no need for such a hack. Just put all the fields in the files dict, they don’t have to be files (just make sure to use the tuple form and set the filename to None). Better still, use the requests_toolbelt project. – Martijn Pieters Mar 13 '20 at 8:39
  • Thanks @MartijnPieters, the trick with the tuple form is great! Will give that a try. – Daniel Situnayake Mar 14 '20 at 15:50
116

Since the previous answers were written, requests have changed. Have a look at the bug thread at Github for more detail and this comment for an example.

In short, the files parameter takes a dict with the key being the name of the form field and the value being either a string or a 2, 3 or 4-length tuple, as described in the section POST a Multipart-Encoded File in the requests quickstart:

>>> url = 'http://httpbin.org/post'
>>> files = {'file': ('report.xls', open('report.xls', 'rb'), 'application/vnd.ms-excel', {'Expires': '0'})}

In the above, the tuple is composed as follows:

(filename, data, content_type, headers)

If the value is just a string, the filename will be the same as the key, as in the following:

>>> files = {'obvius_session_id': '72c2b6f406cdabd578c5fd7598557c52'}

Content-Disposition: form-data; name="obvius_session_id"; filename="obvius_session_id"
Content-Type: application/octet-stream

72c2b6f406cdabd578c5fd7598557c52

If the value is a tuple and the first entry is None the filename property will not be included:

>>> files = {'obvius_session_id': (None, '72c2b6f406cdabd578c5fd7598557c52')}

Content-Disposition: form-data; name="obvius_session_id"
Content-Type: application/octet-stream

72c2b6f406cdabd578c5fd7598557c52
  • 2
    What if you need to distinguish the name and filename but also have multiple fields with the same name? – Michael Jan 15 '15 at 18:45
  • 1
    I have a simillar problem as @Michael . Can you have a look at the question and suggest something? [link]( stackoverflow.com/questions/30683352/…) – Shaardool Jun 7 '15 at 1:04
  • did someone solve this problem with having multiple fields with the same name? – user3131037 Oct 29 '15 at 14:44
  • 1
    The trick to pass en empty string as the first value of a files tuple does not work anymore: you need to use requests.post data parameter instead to send additionnal non-file multipart/form-data parameters – Lucas Cimon Dec 8 '16 at 10:23
  • 1
    Passing None instead of an empty string seems to work – Alexandre Blin Jan 2 '17 at 11:08
84

You need to use the files parameter to send a multipart form POST request even when you do not need to upload any files.

From the original requests source:

def request(method, url, **kwargs):
    """Constructs and sends a :class:`Request <Request>`.

    ...
    :param files: (optional) Dictionary of ``'name': file-like-objects``
        (or ``{'name': file-tuple}``) for multipart encoding upload.
        ``file-tuple`` can be a 2-tuple ``('filename', fileobj)``,
        3-tuple ``('filename', fileobj, 'content_type')``
        or a 4-tuple ``('filename', fileobj, 'content_type', custom_headers)``,
        where ``'content-type'`` is a string
        defining the content type of the given file
        and ``custom_headers`` a dict-like object 
        containing additional headers to add for the file.

The relevant part is: file-tuple can be a2-tuple, 3-tupleor a4-tuple.

Based on the above, the simplest multipart form request that includes both files to upload and form fields will look like this:

multipart_form_data = {
    'file2': ('custom_file_name.zip', open('myfile.zip', 'rb')),
    'action': (None, 'store'),
    'path': (None, '/path1')
}

response = requests.post('https://httpbin.org/post', files=multipart_form_data)

print(response.content)

Note the None as the first argument in the tuple for plain text fields — this is a placeholder for the filename field which is only used for file uploads, but for text fields passing None as the first parameter is required in order for the data to be submitted.

Multiple fields with the same name

If you need to post multiple fields with the same name then instead of a dictionary you can define your payload as a list (or a tuple) of tuples:

multipart_form_data = (
    ('file2', ('custom_file_name.zip', open('myfile.zip', 'rb'))),
    ('action', (None, 'store')),
    ('path', (None, '/path1')),
    ('path', (None, '/path2')),
    ('path', (None, '/path3')),
)

Streaming requests API

If the above API is not pythonic enough for you, then consider using requests toolbelt (pip install requests_toolbelt) which is an extension of the core requests module that provides support for file upload streaming as well as the MultipartEncoder which can be used instead of files, and which also lets you define the payload as a dictionary, tuple or list.

MultipartEncoder can be used both for multipart requests with or without actual upload fields. It must be assigned to the data parameter.

import requests
from requests_toolbelt.multipart.encoder import MultipartEncoder

multipart_data = MultipartEncoder(
    fields={
            # a file upload field
            'file': ('file.zip', open('file.zip', 'rb'), 'text/plain')
            # plain text fields
            'field0': 'value0', 
            'field1': 'value1',
           }
    )

response = requests.post('http://httpbin.org/post', data=multipart_data,
                  headers={'Content-Type': multipart_data.content_type})

If you need to send multiple fields with the same name, or if the order of form fields is important, then a tuple or a list can be used instead of a dictionary:

multipart_data = MultipartEncoder(
    fields=(
            ('action', 'ingest'), 
            ('item', 'spam'),
            ('item', 'sausage'),
            ('item', 'eggs'),
           )
    )
  • Thank you for this. The order of keys was important to me and this helped a lot. – Splendor May 2 '16 at 16:06
  • Amazing. Inexplicably, an api I am working with requires 2 different values for the same key. This is amazing. Thank you. – ajon May 9 '16 at 17:21
  • @ccpizza, what actually this line means? > "('file.py', open('file.py', 'rb'), 'text/plain')". It doesn't work for me :( – Denis Koreyba Jan 31 '17 at 13:16
  • @DenisKoreyba: this is an example of a file upload field which assumes that the a file named file.py is located in the same folder as your script. – ccpizza Mar 18 '17 at 11:43
  • 1
    You can use None instead of empty string. Then requests will not include a filename at all. So instead of Content-Disposition: form-data; name="action"; filename="" it will be Content-Disposition: form-data; name="action". This was critical for me for the server to accept those fields as form fields and not as files. – Mitar Oct 20 '18 at 17:30
11

Here is the simple code snippet to upload a single file with additional parameters using requests:

url = 'https://<file_upload_url>'
fp = '/Users/jainik/Desktop/data.csv'

files = {'file': open(fp, 'rb')}
payload = {'file_id': '1234'}

response = requests.put(url, files=files, data=payload, verify=False)

Please note that you don't need to explicitly specify any content type.

NOTE: Wanted to comment on one of the above answers but could not because of low reputation so drafted a new response here.

  • The least verbose and easiest to understand. Anyway, should a file be opened with'rb' option? – GyuHyeon Choi 2 days ago
6

You need to use the name attribute of the upload file that is in the HTML of the site. Example:

autocomplete="off" name="image">

You see name="image">? You can find it in the HTML of a site for uploading the file. You need to use it to upload the file with Multipart/form-data

script:

import requests

site = 'https://prnt.sc/upload.php' # the site where you upload the file
filename = 'image.jpg'  # name example

Here, in the place of image, add the name of the upload file in HTML

up = {'image':(filename, open(filename, 'rb'), "multipart/form-data")}

If the upload requires to click the button for upload, you can use like that:

data = {
     "Button" : "Submit",
}

Then start the request

request = requests.post(site, files=up, data=data)

And done, file uploaded succesfully

4

Send multipart/form-data key and value

curl command:

curl -X PUT http://127.0.0.1:8080/api/xxx ...
-H 'content-type: multipart/form-data; boundary=----xxx' \
-F taskStatus=1

python requests - More complicated POST requests:

    updateTaskUrl = "http://127.0.0.1:8080/api/xxx"
    updateInfoDict = {
        "taskStatus": 1,
    }
    resp = requests.put(updateTaskUrl, data=updateInfoDict)

Send multipart/form-data file

curl command:

curl -X POST http://127.0.0.1:8080/api/xxx ...
-H 'content-type: multipart/form-data; boundary=----xxx' \
-F file=@/Users/xxx.txt

python requests - POST a Multipart-Encoded File:

    filePath = "/Users/xxx.txt"
    fileFp = open(filePath, 'rb')
    fileInfoDict = {
        "file": fileFp,
    }
    resp = requests.post(uploadResultUrl, files=fileInfoDict)

that's all.

1

To clarify examples given above,

"You need to use the files parameter to send a multipart form POST request even when you do not need to upload any files."

files={}

won't work, unfortunately.

You will need to put some dummy values in, e.g.

files={"foo": "bar"}

I came up against this when trying to upload files to Bitbucket's REST API and had to write this abomination to avoid the dreaded "Unsupported Media Type" error:

url = "https://my-bitbucket.com/rest/api/latest/projects/FOO/repos/bar/browse/foobar.txt"
payload = {'branch': 'master', 
           'content': 'text that will appear in my file',
           'message': 'uploading directly from python'}
files = {"foo": "bar"}
response = requests.put(url, data=payload, files=files)

:O=

  • Couldn't you do requests.put(url, files=payload) – Nizam Mohamed Jan 11 at 12:22
0

I'm trying to send a request to URL_server with request module in python 3. This works for me:

# -*- coding: utf-8 *-*
import json, requests

URL_SERVER_TO_POST_DATA = "URL_to_send_POST_request"
HEADERS = {"Content-Type" : "multipart/form-data;"}

def getPointsCC_Function():
  file_data = {
      'var1': (None, "valueOfYourVariable_1"),
      'var2': (None, "valueOfYourVariable_2")
  }

  try:
    resElastic = requests.post(URL_GET_BALANCE, files=file_data)
    res = resElastic.json()
  except Exception as e:
    print(e)

  print (json.dumps(res, indent=4, sort_keys=True))

getPointsCC_Function()

Where:

  • URL_SERVER_TO_POST_DATA = Server where we going to send data
  • HEADERS = Headers sended
  • file_data = Params sended
0
import requests
# assume sending two files
url = "put ur url here"
f1 = open("file 1 path", 'rb')
f2 = open("file 2 path", 'rb')
response = requests.post(url,files={"file1 name": f1, "file2 name":f2})
print(response)
-1

Here is the python snippet you need to upload one large single file as multipart formdata. With NodeJs Multer middleware running on the server side.

import requests
latest_file = 'path/to/file'
url = "http://httpbin.org/apiToUpload"
files = {'fieldName': open(latest_file, 'rb')}
r = requests.put(url, files=files)

For the server side please check the multer documentation at: https://github.com/expressjs/multer here the field single('fieldName') is used to accept one single file, as in:

var upload = multer().single('fieldName');

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