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I have a string like so: "sometext #Syrup #nshit #thebluntislit"

and i want to get a list of all terms starting with '#'

I used the following code:

import re
line = "blahblahblah #Syrup #nshit #thebluntislit"
ht = re.search(r'#\w*', line)
ht = ht.group(0)
print ht

and i get the following:

#Syrup

I was wondering if there is a way that I could instead get a list like:

[#Syrup,#nshit,#thebluntislit]

for all terms starting with '#' instead of just the first term.

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3 Answers

up vote 1 down vote accepted

Looks like re.findall() will do what you want.

matches = re.findall(r'#\w*', line)
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Regular expression is not needed with good programming languages like Python:

  hashed = [ word for word in line.split() if word.startswith("#") ]
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I call BS. Whether or not regular expressions are needed does not depend on the language, but on the use case. There are good reasons for using a regex, although this might not be one. Anyway, nice answer. –  middus Dec 1 '11 at 20:20
3  
Python is soo sexy isn't it?! :-) –  gecco Dec 1 '11 at 20:21
    
well, this only works if all your terms are space delimited. Also, knowing that Mikko has an agenda against regular expressions, I would state that it is not the regular expressions in the mathematical sense, but the braindamaged syntax that is bad. –  Antti Haapala May 17 '12 at 8:20
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You can use

compiled = re.compile(r'#\w*')
compiled.findall(line)

Output:

['#Syrup', '#nshit', '#thebluntislit']

But there is a problem. If you search the string like 'blahblahblah #Syrup #nshit #thebluntislit beg#end', the output will be ['#Syrup', '#nshit', '#thebluntislit', '#end'].

This problem may be addressed by using positive lookbehind:

compiled = re.compile(r'(?<=\s)#\w*')

(it's not possible to use \b (word boundary) here since # is not among \w symbols [0-9a-zA-Z_] which may constitute the word which boundary is being searched).

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