22

I have tried to follow the documentation but was not able to use urlparse.parse.quote_plus() in Python 3:

from urllib.parse import urlparse

params = urlparse.parse.quote_plus({'username': 'administrator', 'password': 'xyz'})

I get

AttributeError: 'function' object has no attribute 'parse'

35

You misread the documentation. You need to do two things:

  1. Quote each key and value from your dictionary, and
  2. Encode those into a URL

Luckily urllib.parse.urlencode does both those things in a single step, and that's the function you should be using.

from urllib.parse import urlencode, quote_plus

payload = {'username':'administrator', 'password':'xyz'}
result = urlencode(payload, quote_via=quote_plus)
# 'password=xyz&username=administrator'
  • 1
    It's a pity that it does not work with plain strings like PHP's function urlencode(). So one must have key:value pairs, which IMHO is too restrictive. For instance, I have a need to URL encode only a part of string - password in proto://user:pass@site.com cmd line to run duplicity backup. Python2 does work as intended though: python2 -c "import urllib as ul; print ul.quote_plus('$KEY');" -> where $KEY is supplied from bash script. – stamster Sep 29 '18 at 9:14
  • 2
    @stamster quote_plus is available in Python 3 the same way. python3 -c "import urllib.parse as ul; print(ul.quote_plus('$KEY'))" – Adam Smith Sep 29 '18 at 20:44
1

For python 3 you coudld try using quote instead of quote_plus

import urllib.parse

print urllib.parse.quote("http://www.sample.com/")

Result:

http%3A%2F%2Fwww.sample.com%2F

OR

from requests.utils import requote_uri
requote_uri("http://www.sample.com/?id=123 abc")

Result:

'https://www.sample.com/?id=123%20abc'
  • This is not Python 3 code. Unfortunately there is no quote in urllib in python3 anymore. – Niall Farrington Feb 11 at 1:40
  • Try urllib.parse.quote [Edited the original post] @NiallFarrington – Rich Rajah Feb 14 at 22:19
0

You’re looking for urllib.parse.urlencode

import urllib.parse

params = {'username': 'administrator', 'password': 'xyz'}
encoded = urllib.parse.urlencode(params)
# Returns: 'username=administrator&password=xyz'

Your Answer

By clicking "Post Your Answer", you agree to our terms of service, privacy policy and cookie policy

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