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What is an elegant way to look for a string within another string in Python, but only if the substring is within whole words, not part of a word?

Perhaps an example will demonstrate what I mean:

string1 = "ADDLESHAW GODDARD"
string2 = "ADDLESHAW GODDARD LLP"
assert string_found(string1, string2)  # this is True
string1 = "ADVANCE"
string2 = "ADVANCED BUSINESS EQUIPMENT LTD"
assert not string_found(string1, string2)  # this should be False

How can I best write a function called string_found that will do what I need? I thought perhaps I could fudge it with something like this:

def string_found(string1, string2):
   if string2.find(string1 + " "):
      return True
   return False

But that doesn't feel very elegant, and also wouldn't match string1 if it was at the end of string2. Maybe I need a regex? (argh regex fear)

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2 Answers 2

You can use regular expressions and the word boundary special character \b (highlight by me):

Matches the empty string, but only at the beginning or end of a word. A word is defined as a sequence of alphanumeric or underscore characters, so the end of a word is indicated by whitespace or a non-alphanumeric, non-underscore character. Note that \b is defined as the boundary between \w and \W, so the precise set of characters deemed to be alphanumeric depends on the values of the UNICODE and LOCALE flags. Inside a character range, \b represents the backspace character, for compatibility with Python’s string literals.

def string_found(string1, string2):
   if re.search(r"\b" + re.escape(string1) + r"\b", string2):
      return True
   return False

Demo


If word boundaries are only whitespaces for you, you could also get away with pre- and appending whitespaces to your strings:

def string_found(string1, string2):
   string1 = " " + string1.strip() + " "
   string2 = " " + string2.strip() + " "
   if string2.find(string1):
      return True
   return False
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1  
Up-voted for the theoretical suggestion. Your script, OTOH, will not work. '\b' is the escape sequence for the backspace ('\x08') character. I would suggest r'\b%s\b' % (re.escape(string1)) as the first parameter to re.search() in stead. In fact, that whole function could be reduced to return re.search(r'\b%s\b' % (re.escape(string1)), string2) is not None –  Walter Nov 11 '10 at 13:59
1  
@Walter: Not sure about \b. It is said: Inside a character range, \b represents the backspace character, ... It works for me at least. But yes, string substitution is nice too :) –  Felix Kling Nov 11 '10 at 14:06
    
when \b is inside a character range [a-z0-9\b]...? \b should work, and did in the very brief test I did –  Cubed Eye Nov 11 '10 at 14:07
    
@Walter: Your r'\b%s\b' % (re.escape(string1)) has identical results to Felix's r"\b" + re.escape(string1) + r"\b"; side note: the extra parens in yours aren't useful, as they don't represent a tuple of length one. Though if ...: return True; else: return False is also a big pet peeve of mine. –  Roger Pate Nov 13 '10 at 10:11
    
In my use case I have many cases in which string_found() return False. To make it way faster for False cases add a test for string1 in string2 before running the expensive re.search(): def string_found(string1, string2): if string1 in string2 and if re.search(r"\b" + re.escape(string1) + r"\b", string2): ... –  Peter Senna Jun 23 at 14:28

Here's a way to do it without a regex (as requested) assuming that you want any whitespace to serve as a word separator.

import string

def find_substring(needle, haystack):
    index = haystack.find(needle)
    if index == -1:
        return False
    if index != 0 and haystack[index-1] not in string.whitespace:
        return False
    L = index + len(needle)
    if L < len(haystack) and haystack[L] not in string.whitespace:
        return False
    return True

And here's some demo code (codepad is a great idea: Thanks to Felix Kling for reminding me)

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You're welcome :) –  Felix Kling Nov 11 '10 at 14:20
    
Just make sure to "save" the codepad pastes, so they don't expire. (I include a link back in a codepad comment, just for my own notes later, too.) –  Roger Pate Nov 13 '10 at 7:27

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