Python has string.find() and string.rfind() to get the index of a substring in string.

I wonder, maybe there is something like string.find_all() which can return all founded indexes (not only first from beginning or first from end)?

For example:

string = "test test test test"

print string.find('test') # 0
print string.rfind('test') # 15

#that's the goal
print string.find_all('test') # [0,5,10,15]
  • 8
    what should 'ttt'.find_all('tt') return? – Santiago Alessandri Jan 12 '11 at 2:41
  • 2
    it should return '0'. Of course, in perfect world there also has to be 'ttt'.rfind_all('tt'), which should return '1' – nukl Jan 12 '11 at 2:47
  • 1
    Seems like a duplicate of this stackoverflow.com/questions/3873361/… – nu everest Aug 21 '16 at 15:28
  • 2
    Regex is evil, dont't ever use it – user6416335 Jan 25 at 14:37

15 Answers 15

up vote 386 down vote accepted

There is no simple built-in string function that does what you're looking for, but you could use the more powerful regular expressions:

import re
[m.start() for m in re.finditer('test', 'test test test test')]
#[0, 5, 10, 15]

If you want to find overlapping matches, lookahead will do that:

[m.start() for m in re.finditer('(?=tt)', 'ttt')]
#[0, 1]

If you want a reverse find-all without overlaps, you can combine positive and negative lookahead into an expression like this:

search = 'tt'
[m.start() for m in re.finditer('(?=%s)(?!.{1,%d}%s)' % (search, len(search)-1, search), 'ttt')]
#[1]

re.finditer returns a generator, so you could change the [] in the above to () to get a generator instead of a list which will be more efficient if you're only iterating through the results once.

  • hi, concerning this [m.start() for m in re.finditer('test', 'test test test test')], how can we look for test or text? Does it become much more complicated? – xpanta Mar 1 '13 at 10:48
  • 7
    You want to look into regular expression in general : docs.python.org/2/howto/regex.html. The solution to your question will be : [m.start() for m in re.finditer('te[sx]t', 'text test text test')] – Yotam Vaknin May 6 '14 at 10:21
  • 1
    What will be the time complexity of using this method ? – Pranjal Mittal Jul 13 '17 at 23:50
  • 1
    Regex is evil, dont't ever use it – user6416335 Jan 25 at 14:37
  • 2
    @Alex Depler: Regex is evil why? – some-non-descript-user Jun 6 at 8:04
>>> help(str.find)
Help on method_descriptor:

find(...)
    S.find(sub [,start [,end]]) -> int

Thus, we can build it ourselves:

def find_all(a_str, sub):
    start = 0
    while True:
        start = a_str.find(sub, start)
        if start == -1: return
        yield start
        start += len(sub) # use start += 1 to find overlapping matches

list(find_all('spam spam spam spam', 'spam')) # [0, 5, 10, 15]

No temporary strings or regexes required.

  • 18
    To get overlapping matches, it should suffice to replace start += len(sub) with start += 1. – Karl Knechtel Jan 12 '11 at 3:13
  • 4
    I believe your previous comment should be a postscript in your answer. – tzot Feb 6 '11 at 19:27
  • 1
    Your code does not work for finding substr: "ATAT" in "GATATATGCATATACTT" – Ashish Negi Oct 5 '13 at 7:08
  • 2
    See the comment I made in addition. That is an example of an overlapping match. – Karl Knechtel Oct 14 '13 at 0:13
  • 3
    To match the behaviour of re.findall, I'd recommend adding len(sub) or 1 instead of len(sub), otherwise this generator will never terminate on empty substring. – WGH Nov 27 '15 at 0:15

Here's a (very inefficient) way to get all (i.e. even overlapping) matches:

>>> string = "test test test test"
>>> [i for i in range(len(string)) if string.startswith('test', i)]
[0, 5, 10, 15]
  • @BlaXpirit: true, the output of range() is zero-based. Thanks... – thkala Apr 21 '13 at 8:37

You can use re.finditer() for non-overlapping matches.

>>> import re
>>> aString = 'this is a string where the substring "is" is repeated several times'
>>> print [(a.start(), a.end()) for a in list(re.finditer('is', aString))]
[(2, 4), (5, 7), (38, 40), (42, 44)]

but won't work for:

In [1]: aString="ababa"

In [2]: print [(a.start(), a.end()) for a in list(re.finditer('aba', aString))]
Output: [(0, 3)]
  • 10
    Why make a list out of an iterator, it just slows the process. – pradyunsg May 13 '13 at 10:57
  • 2
    aString VS astring ;) – NexD. Nov 15 '16 at 14:51
  • this won't work for substrings like aa or bb – Coder anonymous May 22 '17 at 11:33

Come, let us recurse together.

def locations_of_substring(string, substring):
    """Return a list of locations of a substring."""

    substring_length = len(substring)    
    def recurse(locations_found, start):
        location = string.find(substring, start)
        if location != -1:
            return recurse(locations_found + [location], location+substring_length)
        else:
            return locations_found

    return recurse([], 0)

print(locations_of_substring('this is a test for finding this and this', 'this'))
# prints [0, 27, 36]

No need for regular expressions this way.

  • I just started wonder "is there a fancy way to locate a substring inside a string in python"... and then after 5 min of googling I found your code. Thanks for sharing!!! – Geparada Aug 5 '14 at 18:22
  • 2
    This code has several problems. Since it's working on open-ended data sooner or later you'll bump into RecursionError if there are many enough occurrences. Another one are two throw-away lists it creates on each iteration just for the sake of appending one element, which is very suboptimal for a string finding function, which possibly could be called a lot of times. Although sometimes recursive functions seem elegant and clear, they should be taken with caution. – Ivan Nikolaev Nov 15 '16 at 8:54

Again, old thread, but here's my solution using a generator and plain str.find.

def findall(p, s):
    '''Yields all the positions of
    the pattern p in the string s.'''
    i = s.find(p)
    while i != -1:
        yield i
        i = s.find(p, i+1)

Example

x = 'banananassantana'
[(i, x[i:i+2]) for i in findall('na', x)]

returns

[(2, 'na'), (4, 'na'), (6, 'na'), (14, 'na')]

If you're just looking for a single character, this would work:

string = "dooobiedoobiedoobie"
match = 'o'
reduce(lambda count, char: count + 1 if char == match else count, string, 0)
# produces 7

Also,

string = "test test test test"
match = "test"
len(string.split(match)) - 1
# produces 4

My hunch is that neither of these (especially #2) is terribly performant.

this is an old thread but i got interested and wanted to share my solution.

def find_all(a_string, sub):
    result = []
    k = 0
    while k < len(a_string):
        k = a_string.find(sub, k)
        if k == -1:
            return result
        else:
            result.append(k)
            k += 1 #change to k += len(sub) to not search overlapping results
    return result

It should return a list of positions where the substring was found. Please comment if you see an error or room for improvment.

This thread is a little old but this worked for me:

numberString = "onetwothreefourfivesixseveneightninefiveten"
testString = "five"

marker = 0
while marker < len(numberString):
    try:
        print(numberString.index("five",marker))
        marker = numberString.index("five", marker) + 1
    except ValueError:
        print("String not found")
        marker = len(numberString)

Whatever the solutions provided by others are completely based on the available method find() or any available methods.

What is the core basic algorithm to find all the occurrences of a substring in a string?

def find_all(string,substring):
    """
    Function: Returning all the index of substring in a string
    Arguments: String and the search string
    Return:Returning a list
    """
    length = len(substring)
    c=0
    indexes = []
    while c < len(string):
        if string[c:c+length] == substring:
            indexes.append(c)
        c=c+1
    return indexes

You can also inherit str class to new class and can use this function below.

class newstr(str):
def find_all(string,substring):
    """
    Function: Returning all the index of substring in a string
    Arguments: String and the search string
    Return:Returning a list
    """
    length = len(substring)
    c=0
    indexes = []
    while c < len(string):
        if string[c:c+length] == substring:
            indexes.append(c)
        c=c+1
    return indexes

Calling the method

newstr.find_all('Do you find this answer helpful? then upvote this!','this')

You can try :

>>> string = "test test test test"
>>> for index,value in enumerate(string):
    if string[index:index+(len("test"))] == "test":
        print index

0
5
10
15

This does the trick for me using re.finditer

import re

text = 'This is sample text to test if this pythonic '\
       'program can serve as an indexing platform for '\
       'finding words in a paragraph. It can give '\
       'values as to where the word is located with the '\
       'different examples as stated'

#  find all occurances of the word 'as' in the above text

find_the_word = re.finditer('as', text)

for match in find_the_word:
    print('start {}, end {}, search string \'{}\''.
          format(match.start(), match.end(), match.group()))

When looking for a large amount of key words in a document, use flashtext

from flashtext import KeywordProcessor
words = ['test', 'exam', 'quiz']
txt = 'this is a test'
kwp = KeywordProcessor()
kwp.add_keywords_from_list(words)
result = kwp.extract_keywords(txt, span_info=True)

Flashtext runs faster than regex on large list of search words.

The pythonic way would be:

mystring = 'Hello World, this should work!'
find_all = lambda c,s: [x for x in range(c.find(s), len(c)) if c[x] == s]

# s represents the search string
# c represents the character string

find_all(mystring,'o')    # will return all positions of 'o'

[4, 7, 20, 26] 
>>> 

please look at below code

#!/usr/bin/env python
# coding:utf-8
'''黄哥Python'''


def get_substring_indices(text, s):
    result = [i for i in range(len(text)) if text.startswith(s, i)]
    return result


if __name__ == '__main__':
    text = "How much wood would a wood chuck chuck if a wood chuck could chuck wood?"
    s = 'wood'
    print get_substring_indices(text, s)

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