31

I simply would like to find and replace all occurrences of a twitter url in a string (tweet):

Input:

This is a tweet with a url: http://t.co/0DlGChTBIx

Output:

This is a tweet with a url:

I've tried this:

p=re.compile(r'\<http.+?\>', re.DOTALL)
tweet_clean = re.sub(p, '', tweet)
5

8 Answers 8

70

Do this:

result = re.sub(r"http\S+", "", subject)
  • http matches literal characters
  • \S+ matches all non-whitespace characters (the end of the url)
  • we replace with the empty string
2
  • It will remove any string prefix with http e.g. httparty
    – Kaustuv
    Commented Dec 28, 2019 at 13:38
  • What is re, subject and is result a constant? Commented Dec 21, 2020 at 10:12
2

The following regex will capture two matched groups: the first includes everything in the tweet until the url and the second will catch everything that will come after the URL (empty in the example you posted above):

import re
str = 'This is a tweet with a url: http://t.co/0DlGChTBIx'
clean_tweet = re.match('(.*?)http.*?\s?(.*?)', str)
if clean_tweet: 
    print clean_tweet.group(1)
    print clean_tweet.group(2) # will print everything after the URL 
3
  • 1
    You asked the output to be: "This is a tweet with a url:" and that's what it does. Do you want to extract only the URL ?
    – Nir Alfasi
    Commented Aug 21, 2014 at 22:17
  • 1
    string = "niki minaj - anaconda:hhttp://youtu.be/LDZX4ooRsWs @tv1 #niki this is cool!" ( trying to take out the url, the (at)mention and the #hashtag and leave everything else )
    – sirvon
    Commented Aug 21, 2014 at 22:22
  • @sirvon can you add this test-case with an expected output to the question?
    – Nir Alfasi
    Commented Aug 22, 2014 at 0:47
2

you can use:

text = 'Amazing save #FACup #zeebox https://stackoverflow.com/tiUya56M Ok'
text = re.sub(r'https?:\/\/\S*', '', text, flags=re.MULTILINE)

# output: 'Amazing save #FACup #zeebox  Ok'
  • r The solution is to use Python’s raw string notation for regular expression patterns; backslashes are not handled in any special way in a string literal prefixed with 'r'
  • ? Causes the resulting RE to match 0 or 1 repetitions of the preceding RE. https? will match either ‘http’ or ‘https’.
  • https?:\/\/ will match any "http://" and "https://" in string
  • \S Returns a match where the string DOES NOT contain a white space character
  • * Zero or more occurrences
1

You could try the below re.sub function to remove URL link from your string,

>>> str = 'This is a tweet with a url: http://t.co/0DlGChTBIx'
>>> m = re.sub(r':.*$', ":", str)
>>> m
'This is a tweet with a url:'

It removes everything after first : symbol and : in the replacement string would add : at the last.

This would prints all the characters which are just before to the : symbol,

>>> m = re.search(r'^.*?:', str).group()
>>> m
'This is a tweet with a url:'
1
text = re.sub(r"https:(\/\/t\.co\/([A-Za-z0-9]|[A-Za-z]){10})", "", text)

This matches alphanumerics too after t.co/

0

Try using this:

text = re.sub(r"http\S+", "", text)
0

clean_tweet = re.match('(.*?)http(.*?)\s(.*)', content)

while (clean_tweet):
content = clean_tweet.group(1) + " " + clean_tweet.group(3)
clean_tweet = re.match('(.*?)http(.*?)\s(.*)', content)

0

I found this solution:

text = re.sub(r'https?://\S+|www\.\S+', '', text)

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