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i have an string in which a word "LOCAL" is occurring many times. i used find() function for searching this word but it returns one more another word "Locally". How can i match exact "local" word.

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5 Answers 5

up vote 16 down vote accepted

For this kind of thing, regexps are very useful :

import re

print(re.findall('\\blocal\\b', "Hello, locally local test local."))
// ['local', 'local']

\b means word boundary, basically. Can be space, punctuation, etc.

Edit for comment :

print(re.sub('\\blocal\\b', '*****', "Hello, LOCAL locally local test local.", flags=re.IGNORECASE))
// Hello, ***** locally ***** test *****.

You can remove flags=re.IGNORECASE if you don't want to ignore the case, obviously.

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thanks its working.. but there is one more problem when i am trying to replace "Local" with another word it also replace "locally" like "*****ly". –  Lalit Chattar Nov 13 '10 at 18:03
    
It's the same thing, but you use re.sub instead of re.findall. I edited my post. –  Vincent Savard Nov 13 '10 at 18:06
    
thank you .... its working.. i was trying it since three days.. you are really python guru. –  Lalit Chattar Nov 13 '10 at 18:14

Below you can use simple function.

def find_word(text, search):

   result = re.findall('\\b'+search+'\\b', text, flags=re.IGNORECASE)
   if len(result)>0:
      return True
   else:
      return False

Using:

text = "Hello, LOCAL locally local test local."
search = "local"
if find_word(text, search):
  print "i Got it..."
else:
  print ":("
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You could use regular expressions to constrain the matches to occur at the word boundary, like this:

import re
p = re.compile(r'\blocal\b')
p.search("locally") # no match
p.search("local") # match
p.findall("rty local local k") # returns ['local', 'local']
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Do a regular expression search for \blocal\b

\b is a "word boundry" it can include beginnings of lines, ends of lines, punctuation, etc.

You can also search case insensitively.

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Look for ' local '? Notice that Python is case sensitive.

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