85

I'm trying to GET an URL of the following format using requests.get() in python:

http://api.example.com/export/?format=json&key=site:dummy+type:example+group:wheel

#!/usr/local/bin/python

import requests

print(requests.__versiom__)
url = 'http://api.example.com/export/'
payload = {'format': 'json', 'key': 'site:dummy+type:example+group:wheel'}
r = requests.get(url, params=payload)
print(r.url)

However, the URL gets percent encoded and I don't get the expected response.

2.2.1
http://api.example.com/export/?key=site%3Adummy%2Btype%3Aexample%2Bgroup%3Awheel&format=json

This works if I pass the URL directly:

url = http://api.example.com/export/?format=json&key=site:dummy+type:example+group:wheel
r = requests.get(url)

Is there some way to pass the the parameters in their original form - without percent encoding?

Thanks!

Improve this question
4
  • 1
    It is a standard. What is wrong with it?
    – alecxe
    Commented May 6, 2014 at 13:58
  • 7
    @alecxe: The site I'm querying doesn't seem to work with percent encoded URLs and I get unexpected response.
    – Satyen Rai
    Commented May 6, 2014 at 14:18
  • 4
    I got this problem with Google Maps API and comma in location=43.585278,39.720278 and I didn't find solution.
    – furas
    Commented May 6, 2014 at 14:28
  • 1
    Ran into the same problem as the OP. A json api I am "forced" to use doesn't like the url passed to it to be encoded. Had to build a string. Didn't know about the safe=':+' option listed below.
    – waltmagic
    Commented Dec 18, 2022 at 7:41

8 Answers 8

Reset to default
96

It is not good solution but you can use directly string:

r = requests.get(url, params='format=json&key=site:dummy+type:example+group:wheel')

BTW:

Code which convert payload to this string

payload = {
    'format': 'json', 
    'key': 'site:dummy+type:example+group:wheel'
}

payload_str = "&".join("%s=%s" % (k,v) for k,v in payload.items())
# 'format=json&key=site:dummy+type:example+group:wheel'

r = requests.get(url, params=payload_str)

EDIT (2020):

You can also use urllib.parse.urlencode(...) with parameter safe=':+' to create string without converting chars :+ .

As I know requests also use urllib.parse.urlencode(...) for this but without safe=.

import requests
import urllib.parse

payload = {
    'format': 'json', 
    'key': 'site:dummy+type:example+group:wheel'
}

payload_str = urllib.parse.urlencode(payload, safe=':+')
# 'format=json&key=site:dummy+type:example+group:wheel'

url = 'https://httpbin.org/get'

r = requests.get(url, params=payload_str)

print(r.text)

I used page https://httpbin.org/get to test it.

Improve this answer
6
  • Thanks, That's what I'm currently doing to make it work. I'm looking for a solution similar to the (obsolete) one described here. Thanks anyway!
    – Satyen Rai
    Commented May 6, 2014 at 15:18
  • I was looking for better solution (similar to the obsolete one) in requests source code but I didn't find it.
    – furas
    Commented May 6, 2014 at 15:28
  • 1
    worked for me. seemingly not great, but gets the job done. i thought there might be some easier solution by adjusting the encoding within the requests object.
    – ryantuck
    Commented Feb 18, 2015 at 22:30
  • I use "%XX" where XX are hex digits. Sending strings for params works until I try to send something larger than 2F, at which point I get an "Invalid control character" error
    – retsigam
    Commented Aug 15, 2018 at 22:19
  • urllib.parse.urlencode is not ignoring curly braces during parsing. self.response = requests.get(SteamQuery.queries[self.query_type], params=urllib.parse.urlencode(self.query_params,safe=":{}[]")) input_json=%7Bappids_filter:[892970]%7D
    – user1023102
    Commented Feb 26, 2021 at 3:10
15

The answers above didn't work for me.

I was trying to do a get request where the parameter contained a pipe, but python requests would also percent encode the pipe. So instead i used urlopen:

# python3
from urllib.request import urlopen

base_url = 'http://www.example.com/search?'
query = 'date_range=2017-01-01|2017-03-01'
url = base_url + query

response = urlopen(url)
data = response.read()
# response data valid

print(response.url)
# output: 'http://www.example.com/search?date_range=2017-01-01|2017-03-01'
Improve this answer
15

In case someone else comes across this in the future, you can subclass requests.Session, override the send method, and alter the raw url, to fix percent encodings and the like. Corrections to the below are welcome.

import requests, urllib

class NoQuotedCommasSession(requests.Session):
    def send(self, *a, **kw):
        # a[0] is prepared request
        a[0].url = a[0].url.replace(urllib.parse.quote(","), ",")
        return requests.Session.send(self, *a, **kw)

s = NoQuotedCommasSession()
s.get("http://somesite.com/an,url,with,commas,that,won't,be,encoded.")
Improve this answer
2
  • I know this wasn't in the OP's question but this doesn't work for the path portion of the URL (at the time of this comment).
    – Tim Ludwinski
    Commented Apr 12, 2021 at 20:20
  • 2
    In modern versions of requests, you actually also are gonna have to patch urllib3; it performs its own encoding. requests.urllib3.util.url.PATH_CHARS.add(','). This starts to get into "more hacky than it's probably worth" territory, but if you REALLY need it... here it is
    – ollien
    Commented Nov 5, 2021 at 15:31
11

The solution, as designed, is to pass the URL directly.

Improve this answer
7
  • 1
    The idea behind using the payload dictionary to keep the actual code somewhat cleaner - as suggested here.
    – Satyen Rai
    Commented May 6, 2014 at 15:12
  • 9
    I found this old comment by @Darkstar kind of funny as the answer he's responding to is by the author of requests.
    – Dustin Wyatt
    Commented Jul 14, 2016 at 16:53
  • 1
    This is the most straightforward and verified working solution. Ditch the payload dictionary and slap all those parameters right into the url.
    – Kurt
    Commented Oct 22, 2020 at 3:12
  • 7
    No this will not work, requests of latest version will encode the characters even if you pass the URL directly.
    – oeter
    Commented Nov 25, 2021 at 12:36
  • 2
    @Hendy print(requests.post("https://google.com?{}").url) -> https://google.com/?%7B%7D
    – bugmenot123
    Commented Jan 15 at 18:24
5

All above solutions don't seem to work anymore from requests version 2.26 on. The suggested solution from the GitHub repo seems to be using a work around with a PreparedRequest.

The following worked for me. Make sure the URL is resolvable, so don't use 'this-is-not-a-domain.com'.

import requests

base_url = 'https://www.example.com/search'
query = '?format=json&key=site:dummy+type:example+group:wheel'

s = requests.Session()
req = requests.Request('GET', base_url)
p = req.prepare()
p.url += query
resp = s.send(p)
print(resp.request.url)

Source: https://github.com/psf/requests/issues/5964#issuecomment-949013046

Improve this answer
4

Requests and Urllib3 don't allow raw URLs anymore!

  • Since those libraries enforce RFC3986 url encoding implicitly.
  • Previously available workarounds are now defunct:
    • Even the prepped request workaround doesn't work anymore!

=> To perform raw path requests another library must be used like "http".

Raw Url Request Wrapper

  • Wrapping the http library provides similar request methods but will not implicitly modify urls, thus allows to send urls as is
  • Code:
import http.client
from urllib.parse import urlparse

class HttpWrapper:

    def parse_url(self, url):
        p_url = urlparse(url)
        host = p_url.hostname
        port = p_url.port
        path = p_url.path
        assert host
        assert port
        
        return host, port, path

    def request(self, url, method, headers={}, data=None):
        # Parse url
        host, port, path = self.parse_url(url)

        # Perform request
        try:
            conn = http.client.HTTPConnection(host, port)
            conn.request(method, path, data, headers)
            response = conn.getresponse()
            return response
        finally:
            conn.close()
    
    def get(self, url, headers):
        return self.request(url, "GET", headers)

    def post(self, url, headers, data):
        return self.request(url, "POST", headers, data)

    def put(self, url, headers, data):
        return self.request(url, "PUT", headers, data)
    
    def delete(self, url, headers):
        return self.request(url, "DELETE", headers)
Improve this answer
1
  • 1
    PSA: This seems quite incomplete and forces the user to always specify a port and headers, does not support HTTPS etc.
    – bugmenot123
    Commented Jan 15 at 18:32
0

Please have a look at the 1st option in this github link. You can ignore the urlibpart which means prep.url = url instead of prep.url = url + qry

Improve this answer
0

I recently ported qs-codec from JavaScript's qs to Python because I needed support for nested lists etc.

If you were to use that you could simply disable encoding, for example

import requests
import qs_codec as qs

url = 'http://api.example.com/export/'

payload = {
  'format': 'json',
  'key': 'site:dummy+type:example+group:wheel'
}

req = requests.get(
  url,
  params=qs.encode(
    payload,
    qs.EncodeOptions(encode=False)
  )
)

print(req.url)

That would return http://api.example.com/export/?format=json&key=site:dummy+type:example+group:wheel just as you would expect.

You can read more on how to use qs-codec here.

Improve this answer

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.