129

I have a request URI and a token. If I use:

curl -s "<MY_URI>" -H "Authorization: TOK:<MY_TOKEN>"

etc., I get a 200 and view the corresponding JSON data. So, I installed requests and when I attempt to access this resource I get a 403 probably because I do not know the correct syntax to pass that token. Can anyone help me figure it out? This is what I have:

import sys,socket
import requests

r = requests.get('<MY_URI>','<MY_TOKEN>')
r. status_code

I already tried:

r = requests.get('<MY_URI>',auth=('<MY_TOKEN>'))
r = requests.get('<MY_URI>',auth=('TOK','<MY_TOKEN>'))
r = requests.get('<MY_URI>',headers=('Authorization: TOK:<MY_TOKEN>'))

But none of these work.

9 Answers 9

140

In python:

('<MY_TOKEN>')

is equivalent to

'<MY_TOKEN>'

And requests interprets

('TOK', '<MY_TOKEN>')

As you wanting requests to use Basic Authentication and craft an authorization header like so:

'VE9LOjxNWV9UT0tFTj4K'

Which is the base64 representation of 'TOK:<MY_TOKEN>'

To pass your own header you pass in a dictionary like so:

r = requests.get('<MY_URI>', headers={'Authorization': 'TOK:<MY_TOKEN>'})
8
  • Traceback (most recent call last): File "<stdin>", line 1, in <module> File "/Library/Frameworks/Python.framework/Versions/2.7/lib/python2.7/site-packages/requests/api.py", line 55, in get return request('get', url, **kwargs) File "/Library/Frameworks/Python.framework/Versions/2.7/lib/python2.7/site-packages/requests/api.py", line 44, in request return session.request(method=method, url=url, **kwargs) File "/Library/Frameworks/Python.framework/Versions/2.7/lib/python2.7/site-packages/requests/sessions.py", line 323, in request prep = self.prepare_request(req)
    – user1552586
    Sep 29, 2013 at 0:16
  • @rebHelium can you gist that? That is not the whole stack trace and there's no indication of what you actually tried. Sep 29, 2013 at 0:25
  • Sorry, Stack Overflow did not allow me to post the whole output. I did exactly as you suggested: r = requests.get('whatever url i have', headers={'Authorization': 'TOK:whatever token i have'})
    – user1552586
    Sep 29, 2013 at 2:19
  • No need to apologize. Did it work? You accepted my answer but it seems to have caused an exception for you. If you create a gist I can help you with greater ease than having a conversation here. Sep 29, 2013 at 13:55
  • 1
    This works! Make sure the spelling of Authorization is right. I used it as Authorisation and the request failed. May 6, 2019 at 12:38
56

I was looking for something similar and came across this. It looks like in the first option you mentioned

r = requests.get('<MY_URI>', auth=('<MY_TOKEN>'))

"auth" takes two parameters: username and password, so the actual statement should be

r=requests.get('<MY_URI>', auth=('<YOUR_USERNAME>', '<YOUR_PASSWORD>'))

In my case, there was no password, so I left the second parameter in auth field empty as shown below:

r=requests.get('<MY_URI', auth=('MY_USERNAME', ''))

Hope this helps somebody :)

2
  • 5
    if you try r = requests.get('<MY_URI>',auth=('<MY_TOKEN>')), you will get TypeError: 'str' object is not callable. that stumped me for a while until i came across this :/
    – aydow
    Aug 24, 2017 at 0:23
  • Your anserd helped me but only after readin the link you provide which you came accros. Working with the HTTPBasicAuth import from requests.auth makes it very easy!
    – Wallem89
    Dec 14, 2019 at 22:22
41

This worked for me:

access_token = #yourAccessTokenHere#

result = requests.post(url,
      headers={'Content-Type':'application/json',
               'Authorization': 'Bearer {}'.format(access_token)})
0
22

You can also set headers for the entire session:

TOKEN = 'abcd0123'
HEADERS = {'Authorization': 'token {}'.format(TOKEN)}

with requests.Session() as s:

    s.headers.update(HEADERS)
    resp = s.get('http://example.com/')
6

i founded here, its ok with me for linkedin: https://auth0.com/docs/flows/guides/auth-code/call-api-auth-code so my code with with linkedin login here:

ref = 'https://api.linkedin.com/v2/me'
headers = {"content-type": "application/json; charset=UTF-8",'Authorization':'Bearer {}'.format(access_token)}
Linkedin_user_info = requests.get(ref1, headers=headers).json()
5

Requests natively supports basic auth only with user-pass params, not with tokens.

You could, if you wanted, add the following class to have requests support token based basic authentication:

import requests
from base64 import b64encode

class BasicAuthToken(requests.auth.AuthBase):
    def __init__(self, token):
        self.token = token
    def __call__(self, r):
        authstr = 'Basic ' + b64encode(('token:' + self.token).encode('utf-8')).decode('utf-8')
        r.headers['Authorization'] = authstr
        return r

Then, to use it run the following request :

r = requests.get(url, auth=BasicAuthToken(api_token))

An alternative would be to formulate a custom header instead, just as was suggested by other users here.

4

You can try something like this

r = requests.get(ENDPOINT, params=params, headers={'Authorization': 'Basic %s' %  API_KEY})
3

This worked for me:

r = requests.get('http://127.0.0.1:8000/api/ray/musics/', headers={'Authorization': 'Token 22ec0cc4207ebead1f51dea06ff149342082b190'})

My code uses user generated token.

2

You have a request needing an authorization maybe you have a result 401.

Suppose your request is like this :

REQ ='https://api.asite.com/something/else/else'

You have your token :

TOKEN = 'fliuzabuvdgfnsuczkncsq12454632'

build your header like this :

HEADER = {'Authorization': f'{TOKEN}'}

and use it like this :

req.get(REQ, headers=HEADER)

display your result like this :

req.get(COACH, headers=HEADER).json()

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