195

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.

0

12 Answers 12

378

What is wrong with:

if word in mystring: 
   print 'success'
11
  • 119
    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
  • 4
    Anyone knows how to overcome this problem? – user2567857 Aug 19 '14 at 9:36
  • 4
    @user2567857, regular expressions -- see Hugh Bothwell's answer. – Mark Rajcok Aug 21 '14 at 19:23
  • 4
    if (word1 in mystring and word2 in mystring) – louie mcconnell Jul 11 '16 at 7:03
  • 4
    How is this the accepted answer?!! It just checks whether a sequence of characters (not a word) appear in a string – pedram bashiri Nov 19 '19 at 22:51
178
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
6
  • 5
    Is there a really fast method of searching for multiple words, say a set of several thousand words, without having to construct a for loop going through each word? I have a million sentences, and a million terms to search through to see which sentence has which matching words. Currently it's taking me days to process, and I want to know if there's a faster way. – Tom Dec 27 '16 at 19:49
  • @Tom try to use grep instead of python regex – El Ruso Feb 3 '17 at 22:57
  • p1 for swordsmith – Robino Aug 11 '17 at 16:23
  • How do you handle exceptions, e.g. when the word is not found in the string? – FaCoffee May 4 '18 at 10:58
  • 1
    @FaCoffee: if the string is not found, the function returns None (see last example above). – Hugh Bothwell May 6 '18 at 17:15
53

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

Edit: A slight variant on this idea for Python 3.6+, equally fast:

def contains_word(s, w):
    return f' {w} ' in f' {s} '
8
  • 4
    This is my favourite answer :) – IanS Aug 11 '16 at 13:16
  • 1
    I agree, but the quickest solution doesn't ignore case like re.compile(... does. – Michael Smith Sep 19 '16 at 20:31
  • 9
    This has several problems: (1) Words at the end (2) Words at the beginning (3) words in between like contains_word("says", "Simon says: Don't use this answer") – Martin Thoma Aug 9 '17 at 9:53
  • 1
    @MartinThoma - As stated, this method is specifically for finding out "whether a whole word is in a space-separated list of words". In that situation, it works fine for: (1) Words at the end (2) Words at the beginning (3) words in between. Your example only fails because your list of words includes a colon. – user200783 Aug 9 '17 at 13:41
  • 2
    @JeffHeaton Once again, this method is SPECIFICALLY for "If you want to find out whether a whole word is in a space-separated list of words", as the author clearly stated. – bitwitch Feb 17 '20 at 20:58
18

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.'
0
15

You can split string to the words and check the result list.

if word in string.split():
    print 'success'
3
  • 3
    Please use the edit link explain how this code works and don’t just give the code, as an explanation is more likely to help future readers. – Jed Fox Dec 1 '16 at 19:55
  • 1
    This should be the actual answer for matching the whole word. – Kaushik NP Jun 16 '17 at 19:52
  • We should think about punctuation too. Look here. – marcio Dec 27 '20 at 20:51
11

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')
0
9

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.

1
  • This solution worked best for my case as I am using tokenized space separated strings. – Avijit Jan 4 '16 at 5:05
7

Using regex is a solution, but it is too complicated for that case.

You can simply split text into list of words. Use split(separator, num) method for that. It returns a list of all the words in the string, using separator as the separator. If separator is unspecified it splits on all whitespace (optionally you can limit the number of splits to num).

list_of_words = mystring.split()
if word in list_of_words:
    print 'success'

This will not work for string with commas etc. For example:

mystring = "One,two and three"
# will split into ["One,two", "and", "three"]

If you also want to split on all commas etc. use separator argument like this:

# whitespace_chars = " \t\n\r\f" - space, tab, newline, return, formfeed
list_of_words = mystring.split( \t\n\r\f,.;!?'\"()")
if word in list_of_words:
    print 'success'
2
  • 1
    This is a good solution, and similar to @Corvax, with the benefit of adding common characters to split on so that in a string like "First: there..", the word "First" could be found. Note that @tstempko isn't including ":" in the additional chars. I would :). Also, if the search is case-insensitive, consider using .lower() on both the word and string before the split. mystring.lower().split() and word.lower() I think this is also faster than the regex example. – beauk Dec 16 '19 at 14:59
  • I think to use something like split( \t\n\r\f,.;!?'\"()") we need to import re. But it is a good solution too. – marcio Dec 27 '20 at 21:05
5

As you are asking for a word and not for a string, I would like to present a solution which is not sensitive to prefixes / suffixes and ignores case:

#!/usr/bin/env python

import re


def is_word_in_text(word, text):
    """
    Check if a word is in a text.

    Parameters
    ----------
    word : str
    text : str

    Returns
    -------
    bool : True if word is in text, otherwise False.

    Examples
    --------
    >>> is_word_in_text("Python", "python is awesome.")
    True

    >>> is_word_in_text("Python", "camelCase is pythonic.")
    False

    >>> is_word_in_text("Python", "At the end is Python")
    True
    """
    pattern = r'(^|[^\w]){}([^\w]|$)'.format(word)
    pattern = re.compile(pattern, re.IGNORECASE)
    matches = re.search(pattern, text)
    return bool(matches)


if __name__ == '__main__':
    import doctest
    doctest.testmod()

If your words might contain regex special chars (such as +), then you need re.escape(word)

4

Advanced way to check the exact word, that we need to find in a long string:

import re
text = "This text was of edited by Rock"
#try this string also
#text = "This text was officially edited by Rock" 
for m in re.finditer(r"\bof\b", text):
    if m.group(0):
        print "Present"
    else:
        print "Absent"
1

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
1
  • 2
    But what if the word is at the beginning or the end of the sentence (no space) – MikeL Dec 13 '16 at 11:25
1

What about to split the string and strip words punctuation?

w in [ws.strip(',.?!') for ws in p.split()]

Or working the case:

w.lower() in [ws.strip(',.?!') for ws in p.lower().split()]

Maybe that way:

def wsearch(word, phrase):
    # Attention about punctuation and about split characters
    punctuation = ',.?!'
    return word.lower() in [words.strip(punctuation) for words in phrase.lower().split()]

Sample:

print(wsearch('CAr', 'I own a caR.'))

I didn't check performance...

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