I can't seem to Google it, but I want a function that does this:

Accept 3 arguments (or more, whatever):

  • URL
  • a dictionary of params
  • POST or GET

Return me the results, and the response code.

Is there a snippet that does this?

  • The question isn't clear -- this is for a local URL, ie. you're writing a server, or a remote URL, ie. you're writing a client? – Charles Duffy Dec 18 '10 at 3:09
  • Please use more problem--descriptive titles in the future. – Kissaki Dec 18 '10 at 3:09
  • 9
    TIMEX has 1221 questions, 58 answers as of today... – Piotr Dobrogost Apr 9 '12 at 20:23
up vote 94 down vote accepted

requests

https://github.com/kennethreitz/requests/

Here's a few common ways to use it:

import requests
url = 'https://...'
payload = {'key1': 'value1', 'key2': 'value2'}

# GET
r = requests.get(url)

# GET with params in URL
r = requests.get(url, params=payload)

# POST with form-encoded data
r = requests.post(url, data=payload)

# POST with JSON 
import json
r = requests.post(url, data=json.dumps(payload))

# Response, status etc
r.text
r.status_code

httplib2

https://github.com/jcgregorio/httplib2

>>> from httplib2 import Http
>>> from urllib import urlencode
>>> h = Http()
>>> data = dict(name="Joe", comment="A test comment")
>>> resp, content = h.request("http://bitworking.org/news/223/Meet-Ares", "POST", urlencode(data))
>>> resp
{'status': '200', 'transfer-encoding': 'chunked', 'vary': 'Accept-Encoding,User-Agent',
 'server': 'Apache', 'connection': 'close', 'date': 'Tue, 31 Jul 2007 15:29:52 GMT', 
 'content-type': 'text/html'}
  • you could also use from httplib2 import Http as h – 3k- Jul 2 '14 at 9:23
  • 3
    @3k No, he's instantiating the Http class, not aliasing it: h = Http(), not h = Http. – ecstaticpeon Nov 3 '14 at 15:48
  • @ecstaticpeon you are very right, I must have been very tired. thanks for the correction! – 3k- Nov 6 '14 at 11:43
  • It would be nice if you did this in a native way without 3rd party libraries. – User May 7 at 18:11

Even easier: via the requests module.

import requests
get_response = requests.get(url='http://google.com')
post_data = {'username':'joeb', 'password':'foobar'}
# POST some form-encoded data:
post_response = requests.post(url='http://httpbin.org/post', data=post_data)

To send data that is not form-encoded, send it serialised as a string (example taken from the documentation):

import json
post_response = requests.post(url='http://httpbin.org/post', data=json.dumps(post_data))
# If using requests v2.4.2 or later, pass the dict via the json parameter and it will be encoded directly:
post_response = requests.post(url='http://httpbin.org/post', json=post_data)
  • 3
    I had to wrap the post_data in json.dumps() before it worked for me: data=json.dumps(post_data) – Matt Mar 12 '14 at 18:36
  • 1
    @Matt, I think that this depends on whether you want to submit form-encoded data (just pass in a dict) or data that is not form-encoded (pass in a string of JSON data). I refer to the docs here: docs.python-requests.org/en/latest/user/quickstart/… – ropable Mar 19 '14 at 1:21
  • is there any version of this module for windows? – TheGoodUser Oct 9 '14 at 18:53
  • @TheGoodUser This library (and many more) are compiled for Windows and available here: lfd.uci.edu/~gohlke/pythonlibs/#requests – ropable Oct 9 '14 at 23:11

You could use this to wrap urllib2:

def URLRequest(url, params, method="GET"):
    if method == "POST":
        return urllib2.Request(url, data=urllib.urlencode(params))
    else:
        return urllib2.Request(url + "?" + urllib.urlencode(params))

That will return a Request object that has result data and response codes.

  • 11
    I prefer this one for sticking to the standard library. – Charles Duffy Dec 18 '10 at 3:11
  • should it be url + "?" instead of url + '&'? – Paulo Scardine Dec 18 '10 at 3:20
  • It's urlencode, not encode – TIMEX Dec 19 '10 at 0:00
  • Yes, you're both right – Ian Wetherbee Dec 19 '10 at 19:16
  • 1
    This is nice, but to be precise, the Request object itself has no result data or response codes - it needs to be "requested" via a method like urlopen. – Bach Jul 18 '14 at 8:02
import urllib

def fetch_thing(url, params, method):
    params = urllib.urlencode(params)
    if method=='POST':
        f = urllib.urlopen(url, params)
    else:
        f = urllib.urlopen(url+'?'+params)
    return (f.read(), f.code)


content, response_code = fetch_thing(
                              'http://google.com/', 
                              {'spam': 1, 'eggs': 2, 'bacon': 0}, 
                              'GET'
                         )

[Update]

Some of these answers are old. Today I would use the requests module like the answer by robaple.

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