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I'm working with Python v2, and I'm trying to find out if you can tell if a word is in a string.

I have found some information about identifying if the word is in the string - using .find, but is there a way to do an IF statement. I would like to have something like the following:

if string.find(word):
    print 'success'

Thanks for any help.

share|improve this question
2  
You need to fix your syntax for the if statement. You need to read up on the result of "find". What does it return? After reading those two things, please clean up your example. – S.Lott Mar 16 '11 at 1:11
up vote 118 down vote accepted

What is wrong with:

if word in mystring: 
   print 'success'
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26  
just as a caution, if you have a string "paratyphoid is bad" and you do a if "typhoid" in "paratyphoid is bad" you will get a true. – David Nelson Dec 19 '12 at 17:52
1  
Anyone knows how to overcome this problem? – user2567857 Aug 19 '14 at 9:36
3  
@user2567857, regular expressions -- see Hugh Bothwell's answer. – Mark Rajcok Aug 21 '14 at 19:23
    
@fabrizioM what can I do if I want to check if two words are in my string? – Loretta Jul 27 '15 at 10:57
if 'seek' in 'those who seek shall find':
    print('Success!')

but keep in mind that this matches a sequence of characters, not necessarily a whole word - for example, 'word' in 'swordsmith' is True. If you only want to match whole words, you ought to use regular expressions:

import re

def findWholeWord(w):
    return re.compile(r'\b({0})\b'.format(w), flags=re.IGNORECASE).search

findWholeWord('seek')('those who seek shall find')    # -> <match object>
findWholeWord('word')('swordsmith')                   # -> None
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5  
+1 for the example code. Made me giggle! – Wesley May 27 '13 at 20:12
    
Man! This is a pearl to find sequence of whole words in an another string. Thanks! – Babu Aug 5 '13 at 8:48
2  
You could also do if " seek " in "those who seek shall find", but would only work if the word has spaces around :P – Deviljho Feb 27 '14 at 19:20
    
Very elegant solution! – Jonathan Jul 30 '14 at 9:07

find returns an integer representing the index of where the search item was found. If it isn't found, it returns -1.

haystack = 'asdf'

haystack.find('a') # result: 0
haystack.find('s') # result: 1
haystack.find('g') # result: -1

if haystack.find(needle) >= 0:
  print 'Needle found.'
else:
  print 'Needle not found.'
share|improve this answer
7  
+1 for the names choices. – ypercubeᵀᴹ Mar 16 '11 at 1:20

This small function compares all search words in given text. If all search words are found in text, returns length of search, or False otherwise.

Also supports unicode string search.

def find_words(text, search):
    """Find exact words"""
    dText   = text.split()
    dSearch = search.split()

    found_word = 0

    for text_word in dText:
        for search_word in dSearch:
            if search_word == text_word:
                found_word += 1

    if found_word == len(dSearch):
        return lenSearch
    else:
        return False

usage:

find_words('çelik güray ankara', 'güray ankara')
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if matching a sequence of characters is not sufficient and you need to match whole words, here is a simple function that gets the job done. it basically appends spaces where necessary and searches for that in the string:

def smart_find(haystack, needle):
    if haystack.startswith(needle+" "):
        return True
    if haystack.endswith(" "+needle):
        return True
    if haystack.find(" "+needle+" ") != -1:
        return True
    return False

this assumes that commas and other punctuations have already been stripped out.

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This solution worked best for my case as I am using tokenized space separated strings. – Avijit Jan 4 at 5:05

You could just add a space before and after "word".

x = raw_input("Type your word: ")
if " word " in x:
    print "Yes"
elif " word " not in x:
    print "Nope"

This way it looks for the space before and after "word".

>>> Type your word: Swordsmith
>>> Nope
>>> Type your word:  word 
>>> Yes
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If you want to find out whether a whole word is in a space-separated list of words, simply use:

def contains_word(s, w):
    return (' ' + w + ' ') in (' ' + s + ' ')

contains_word('the quick brown fox', 'brown')  # True
contains_word('the quick brown fox', 'row')    # False

This elegant method is also the fastest. Compared to Hugh Bothwell's and daSong's approaches:

>python -m timeit -s "def contains_word(s, w): return (' ' + w + ' ') in (' ' + s + ' ')" "contains_word('the quick brown fox', 'brown')"
1000000 loops, best of 3: 0.351 usec per loop

>python -m timeit -s "import re" -s "def contains_word(s, w): return re.compile(r'\b({0})\b'.format(w), flags=re.IGNORECASE).search(s)" "contains_word('the quick brown fox', 'brown')"
100000 loops, best of 3: 2.38 usec per loop

>python -m timeit -s "def contains_word(s, w): return s.startswith(w + ' ') or s.endswith(' ' + w) or s.find(' ' + w + ' ') != -1" "contains_word('the quick brown fox', 'brown')"
1000000 loops, best of 3: 1.13 usec per loop
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protected by bummi Jun 29 '15 at 10:11

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