214

Given a URL like the following, how can I parse the value of the query parameters? For example, in this case I want the value of some_key .

/some_path?some_key=some_value'

I am using Django in my environment; is there a method on the request object that could help me?

I tried using self.request.get('some_key') but it is not returning the value some_value as I had hoped.

0

19 Answers 19

380

This is not specific to Django, but for Python in general. For a Django specific answer, see this one from @jball037

Python 2:

import urlparse

url = 'https://www.example.com/some_path?some_key=some_value'
parsed = urlparse.urlparse(url)
captured_value = urlparse.parse_qs(parsed.query)['some_key'][0]

print captured_value

Python 3:

from urllib.parse import urlparse
from urllib.parse import parse_qs

url = 'https://www.example.com/some_path?some_key=some_value'
parsed_url = urlparse(url)
captured_value = parse_qs(parsed_url.query)['some_key'][0]

print(captured_value)

parse_qs returns a list. The [0] gets the first item of the list so the output of each script is some_value

Here's the 'parse_qs' documentation for Python 3

9
  • 62
    In python3 import urllib.parse as urlparse Sep 28, 2016 at 9:44
  • 32
    Note that parse_qs will return you a list object. You need to get the first element of it if you want a string urlparse.parse_qs(parsed.query)['def'][0] Jul 9, 2017 at 10:11
  • 4
    Note that if url contain '#' character just like this: foo.appspot.com/#/abc?def=ghi, you must disallow fragments: urlparse(url, allow_fragments=False), otherwise query will return empty str.
    – codezjx
    Jul 13, 2017 at 15:29
  • 4
    in python3, must use from urllib.parse import urlparse, parse_qs and parse_qs(parsed.query) Aug 21, 2019 at 11:37
  • 1
    @FrancescoFrassinelli it's valid. urlparse.urlparse(url) --> urlparse(url)
    – Winand
    Jul 15, 2020 at 7:22
87

I'm shocked this solution isn't on here already. Use:

request.GET.get('variable_name')

This will "get" the variable from the "GET" dictionary, and return the 'variable_name' value if it exists, or a None object if it doesn't exist.

3
  • 1
    I can't get this to work. Maybe some more details. How are you getting request? Is this python3 compatible?
    – ggedde
    Apr 2, 2019 at 20:51
  • 12
    @ggedde this answer (like the question) is for django, it is a django request object. if you are not using django, use one of the other answers.
    – Florian
    Apr 14, 2019 at 9:34
  • def parse_category_page(self, response): product_id = response.GET.get('number') doesnt work neither does request
    – snh_nl
    Sep 14, 2020 at 7:36
61

for Python > 3.4

from urllib import parse
url = 'http://foo.appspot.com/abc?def=ghi'
query_def=parse.parse_qs(parse.urlparse(url).query)['def'][0]
1
  • 4
    Best way to do it IMO. Doesn't need extra packages and works A+ on Python 3.5.
    – wanaryytel
    Apr 6, 2017 at 19:14
60
import urlparse
url = 'http://example.com/?q=abc&p=123'
par = urlparse.parse_qs(urlparse.urlparse(url).query)

print par['q'][0], par['p'][0]
0
33

There is a new library called furl. I find this library to be most pythonic for doing url algebra. To install:

pip install furl

Code:

from furl import furl
f = furl("/abc?def='ghi'") 
print f.args['def']
2
  • 4
    Great library! Didn't know about it but works like a charm :)
    – pasql
    Apr 7, 2016 at 0:36
  • 4
    :) I have wasted my share of time trying to make urlparse work for me. No more. Apr 7, 2016 at 7:04
21

I know this is a bit late but since I found myself on here today, I thought that this might be a useful answer for others.

import urlparse
url = 'http://example.com/?q=abc&p=123'
parsed = urlparse.urlparse(url)
params = urlparse.parse_qsl(parsed.query)
for x,y in params:
    print "Parameter = "+x,"Value = "+y

With parse_qsl(), "Data are returned as a list of name, value pairs."

7

The url you are referring is a query type and I see that the request object supports a method called arguments to get the query arguments. You may also want try self.request.get('def') directly to get your value from the object..

6
def getParams(url):
    params = url.split("?")[1]
    params = params.split('=')
    pairs = zip(params[0::2], params[1::2])
    answer = dict((k,v) for k,v in pairs)

Hope this helps

1
  • This should not be necessary inside a webapp. Feb 23, 2011 at 3:48
6

In pure Python:

def get_param_from_url(url, param_name):
    return [i.split("=")[-1] for i in url.split("?", 1)[-1].split("&") if i.startswith(param_name + "=")][0]
4

The urlparse module provides everything you need:

urlparse.parse_qs()

1
  • Does this answer provide anything not provided by other answers? Aug 11, 2021 at 9:10
4

There's not need to do any of that. Only with

self.request.get('variable_name')

Notice that I'm not specifying the method (GET, POST, etc). This is well documented and this is an example

The fact that you use Django templates doesn't mean the handler is processed by Django as well

3
import cgitb
cgitb.enable()

import cgi
print "Content-Type: text/plain;charset=utf-8"
print
form = cgi.FieldStorage()
i = int(form.getvalue('a'))+int(form.getvalue('b'))
print i
2

There is a nice library w3lib.url

from w3lib.url import url_query_parameter
url = "/abc?def=ghi"
print url_query_parameter(url, 'def')
ghi
1

Most answers here suggest using parse_qs to parse an URL string. This method always returns the values as a list (not directly as a string) because a parameter can appear multiple times, e.g.:

http://example.com/?foo=bar&foo=baz&bar=baz

Would return:

{'foo': ['bar', 'baz'], 'bar' : ['baz']}

This is a bit inconvenient because in most cases you're dealing with an URL that doesn't have the same parameter multiple times. This function returns the first value by default, and only returns a list if there's more than one element.

from urllib import parse

def parse_urlargs(url):
    query = parse.parse_qs(parse.urlparse(url).query)
    return {k:v[0] if v and len(v) == 1 else v for k,v in query.items()}

For example, http://example.com/?foo=bar&foo=baz&bar=baz would return:

{'foo': ['bar', 'baz'], 'bar': 'baz'}

0
0

Btw, I was having issues using parse_qs() and getting empty value parameters and learned that you have to pass a second optional parameter 'keep_blank_values' to return a list of the parameters in a query string that contain no values. It defaults to false. Some crappy written APIs require parameters to be present even if they contain no values

for k,v in urlparse.parse_qs(p.query, True).items():
  print k
0

parameters = dict([part.split('=') for part in get_parsed_url[4].split('&')])

This one is simple. The variable parameters will contain a dictionary of all the parameters.

0

I see there isn't an answer for users of Tornado:

key = self.request.query_arguments.get("key", None)

This method must work inside an handler that is derived from:

tornado.web.RequestHandler

None is the answer this method will return when the requested key can't be found. This saves you some exception handling.

0

I didn't want to mess with additional libraries. Simple ways suggested here didn't work out either. Finally, not on the request object, but I could get a GET parameter w/o all that hassle via self.GET.get('XXX'):

...
def get_context_data(self, **kwargs):
    context = super(SomeView, self).get_context_data(**kwargs)
    context['XXX'] = self.GET.get('XXX')
...

Python 2.7.18, Django 1.11.20

0

NOT using Django and tried on Python 3.9. It can also be retrieved using the below code snippet in the handler:

considering URL as-

http://localhost:8081/api/v1/users?query_key=abcdef12345

and handler method as:

@routes.get('/api/v1/users')
async def handler_users(request):
    query_key = request.url.query['query_key']

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