517

What is the quickest way to HTTP GET in Python if I know the content will be a string? I am searching the documentation for a quick one-liner like:

contents = url.get("http://example.com/foo/bar")

But all I can find using Google are httplib and urllib - and I am unable to find a shortcut in those libraries.

Does standard Python 2.5 have a shortcut in some form as above, or should I write a function url_get?

  1. I would prefer not to capture the output of shelling out to wget or curl.
  • 29
    One-liners are not necessarily faster. Don't fetishize code golf. You have to measure speed; not lines of code. – S.Lott Mar 14 '09 at 12:11
  • 95
    uhm, no, I googled in here because I needed to add a line to an experiment I'm writing; not the finished product. CPU time is much, much cheaper than programmer time! – Phlip Oct 11 '13 at 23:58
  • I found what I needed here: stackoverflow.com/a/385411/1695680 – ThorSummoner Jan 11 '16 at 6:46

11 Answers 11

766

Python 2.x:

import urllib2
contents = urllib2.urlopen("http://example.com/foo/bar").read()

Python 3.x:

import urllib.request
contents = urllib.request.urlopen("http://example.com/foo/bar").read()

Documentation for urllib.request and read.

How is that?

  • 34
    Does everything get cleaned up nicely? It looks like I should call close after your read. Is that necessary? – Frank Krueger Mar 14 '09 at 3:49
  • 4
    It is good practice to close it, but if you're looking for a quick one-liner, you could omit it. :-) – Nick Presta Mar 14 '09 at 3:51
  • 23
    The object returned by urlopen will be deleted (and finalized, which closes it) when it falls out of scope. Because Cpython is reference-counted, you can rely on that happening immediately after the read. But a with block would be clearer and safer for Jython, etc. – sah Dec 27 '13 at 21:05
  • 6
    It doesn't work with HTTPS-only websites. requests works fine – OverCoder Jul 16 '16 at 0:45
  • 6
    If you're using Amazon Lambda and need to get a URL, the 2.x solution is available and built-in. It does seem to work with https as well. It's nothing more than r = urllib2.urlopen("http://blah.com/blah") and then text = r.read(). It is sync, it just waits for the result in "text". – Fattie Dec 11 '16 at 18:24
357

You could use a library called requests.

import requests
r = requests.get("http://example.com/foo/bar")

This is quite easy. Then you can do like this:

>>> print(r.status_code)
>>> print(r.headers)
>>> print(r.content)
  • 2
    I notice this is not available in Amazon Lambda... – Fattie Dec 11 '16 at 17:41
  • 1
    @JoeBlow remember that you must import the external libraries in order to use them – MikeVelazco Feb 8 '17 at 22:34
  • 1
    Almost any Python library can be used in AWS Lambda. For pure Python, you just need to "vendor" that library (copy into your module's folders rather than using pip install). For non-pure libraries, there's an extra step -- you need to pip install the lib onto an instance of AWS Linux (the same OS variant lambdas run under), then copy those files instead so you'll have binary compatibility with AWS Linux. The only libraries you won't always be able to use in Lambda are those with binary distributions only, which are thankfully pretty rare. – Chris Johnson Sep 29 '17 at 10:27
  • this doesn't work with python3. – lawphotog Nov 1 '17 at 9:09
  • 3
    @lawphotog this DOES work with python3, but you have to pip install requests. – akarilimano Feb 1 '18 at 10:29
28

If you want solution with httplib2 to be oneliner consider instantiating anonymous Http object

import httplib2
resp, content = httplib2.Http().request("http://example.com/foo/bar")
18

Have a look at httplib2, which - next to a lot of very useful features - provides exactly what you want.

import httplib2

resp, content = httplib2.Http().request("http://example.com/foo/bar")

Where content would be the response body (as a string), and resp would contain the status and response headers.

It doesn't come included with a standard python install though (but it only requires standard python), but it's definitely worth checking out.

6

theller's solution for wget is really useful, however, i found it does not print out the progress throughout the downloading process. It's perfect if you add one line after the print statement in reporthook.

import sys, urllib

def reporthook(a, b, c):
    print "% 3.1f%% of %d bytes\r" % (min(100, float(a * b) / c * 100), c),
    sys.stdout.flush()
for url in sys.argv[1:]:
    i = url.rfind("/")
    file = url[i+1:]
    print url, "->", file
    urllib.urlretrieve(url, file, reporthook)
print
5

Here is a wget script in Python:

# From python cookbook, 2nd edition, page 487
import sys, urllib

def reporthook(a, b, c):
    print "% 3.1f%% of %d bytes\r" % (min(100, float(a * b) / c * 100), c),
for url in sys.argv[1:]:
    i = url.rfind("/")
    file = url[i+1:]
    print url, "->", file
    urllib.urlretrieve(url, file, reporthook)
print
4

Without further necessary imports this solution works (for me) - also with https:

try:
    import urllib2 as urlreq # Python 2.x
except:
    import urllib.request as urlreq # Python 3.x
req = urlreq.Request("http://example.com/foo/bar")
req.add_header('User-Agent', 'Mozilla/5.0 (Windows NT 10.0; Win64; x64) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/60.0.3112.113 Safari/537.36')
urlreq.urlopen(req).read()

I often have difficulty grabbing the content when not specifying a "User-Agent" in the header information. Then usually the requests are cancelled with something like: urllib2.HTTPError: HTTP Error 403: Forbidden or urllib.error.HTTPError: HTTP Error 403: Forbidden.

4

How to also send headers

Python 3:

import urllib.request
contents = urllib.request.urlopen(urllib.request.Request(
    "https://api.github.com/repos/cirosantilli/linux-kernel-module-cheat/releases/latest",
    headers={"Accept" : 'application/vnd.github.full+json"text/html'}
)).read()
print(contents)

Python 2:

import urllib2
contents = urllib2.urlopen(urllib2.Request(
    "https://api.github.com",
    headers={"Accept" : 'application/vnd.github.full+json"text/html'}
)).read()
print(contents)
3

Excellent solutions Xuan, Theller.

For it to work with python 3 make the following changes

import sys, urllib.request

def reporthook(a, b, c):
    print ("% 3.1f%% of %d bytes\r" % (min(100, float(a * b) / c * 100), c))
    sys.stdout.flush()
for url in sys.argv[1:]:
    i = url.rfind("/")
    file = url[i+1:]
    print (url, "->", file)
    urllib.request.urlretrieve(url, file, reporthook)
print

Also, the URL you enter should be preceded by a "http://", otherwise it returns a unknown url type error.

2

If you are working with HTTP APIs specifically, there are also more convenient choices such as Nap.

For example, here's how to get gists from Github since May 1st 2014:

from nap.url import Url
api = Url('https://api.github.com')

gists = api.join('gists')
response = gists.get(params={'since': '2014-05-01T00:00:00Z'})
print(response.json())

More examples: https://github.com/kimmobrunfeldt/nap#examples

2

It's simple enough with urllib3.

Import it like this:

import urllib3

pool_manager = urllib3.PoolManager()

And make a request like this:

example_request = pool_manager.request("GET", "https://example.com")

print(example_request.data.decode("utf-8")) # Response text.
print(example_request.status) # Status code.
print(example_request.headers["Content-Type"]) # Content type.

You can add headers too:

example_request = pool_manager.request("GET", "https://example.com", headers = {
    "Header1": "value1",
    "Header2": "value2"
})
  • great for the fact you can easily provide an HTTP verb – Tom Apr 5 at 17:45

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