437

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

I'm wondering whether there is something like string.find_all() which can return all found indexes (not only the first from the beginning or the first from the end).

For example:

string = "test test test test"

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

#this is the goal
print string.find_all('test') # [0,5,10,15]
3

24 Answers 24

618

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.

9
  • 8
    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
  • 3
    What will be the time complexity of using this method ? – Pranjal Mittal Jul 13 '17 at 23:50
  • 2
    @PranjalMittal. Upper or lower bound? Best, worst or average case? – Mad Physicist Nov 6 '17 at 15:36
  • 1
    @marcog what if the substring contains parentheses or other special characters? – Bananach Nov 10 '18 at 11:18
  • 4
    I would recommend escaping the search strings as well, like this: [m.start() for m in re.finditer(re.escape(search_str), input_str)] – srctaha Jan 8 '20 at 10:18
133
>>> 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.

6
  • 24
    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
  • 6
    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
58

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]
2
  • If we want to check many characters by using 1 for loop how can it be done? with this code, I'll have many for loop and the order of time is too high. – Prof.Plague Dec 5 '20 at 15:09
  • @thkala Very smart way of performing the operation without use of re module. Thanks for the answer! – Cute Panda Apr 18 at 14:29
41

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')]
3
  • 3
    this looks beautiful! – fabio.sang Mar 28 '19 at 20:15
  • 1
    tested and it is twice faster than the re.finditer solution: 310 ns ± 5.35 ns per loop for solution with str.find vs 799 ns ± 5.72 ns per loop for solution with re.finditer (on my machine). Confirms what I've noticed in the past: built-in string methods are generally faster than regex (same for nested str.replace vs re.sub) – Jean Monet Dec 22 '20 at 22:21
  • Prettiest solution. Note that one can easily generalize by introducing optional parameter overlapping=True and replacing i+1 by i + (1 if overlapping else len(p)). – Hugues Dec 27 '20 at 2:43
25

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)]
2
  • 12
    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
20

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.

2
  • 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
  • 4
    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
12

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.

1
  • gr8 solution .. i am impressed with use of .. split() – shantanu pathak Aug 8 '19 at 8:54
10

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.

6

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()))
5

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)
5

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
2

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')

2

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.

2

This function does not look at all positions inside the string, it does not waste compute resources. My try:

def findAll(string,word):
    all_positions=[]
    next_pos=-1
    while True:
        next_pos=string.find(word,next_pos+1)
        if(next_pos<0):
            break
        all_positions.append(next_pos)
    return all_positions

to use it call it like this:

result=findAll('this word is a big word man how many words are there?','word')
0
1
src = input() # we will find substring in this string
sub = input() # substring

res = []
pos = src.find(sub)
while pos != -1:
    res.append(pos)
    pos = src.find(sub, pos + 1)
1
  • 2
    While this code may resolve the OP's issue, it is best to include an explanation as to how your code addresses the OP's issue. In this way, future visitors can learn from your post, and apply it to their own code. SO is not a coding service, but a resource for knowledge. Also, high quality, complete answers are more likely to be upvoted. These features, along with the requirement that all posts are self-contained, are some of the strengths of SO as a platform, that differentiates it from forums. You can edit to add additional info &/or to supplement your explanations with source documentation – SherylHohman May 16 '20 at 18:45
1

This is solution of a similar question from hackerrank. I hope this could help you.

import re
a = input()
b = input()
if b not in a:
    print((-1,-1))
else:
    #create two list as
    start_indc = [m.start() for m in re.finditer('(?=' + b + ')', a)]
    for i in range(len(start_indc)):
        print((start_indc[i], start_indc[i]+len(b)-1))

Output:

aaadaa
aa
(0, 1)
(1, 2)
(4, 5)
1
def find_index(string, let):
    enumerated = [place  for place, letter in enumerate(string) if letter == let]
    return enumerated

for example :

find_index("hey doode find d", "d") 

returns:

[4, 7, 13, 15]
1
  • 3
    Have you actually read the question? Try print(find_index('test test test test', 'test')) which is the example the op gave. – Timus Nov 8 '20 at 14:04
0

Not exactly what OP asked but you could also use the split function to get a list of where all the substrings don't occur. OP didn't specify the end goal of the code but if your goal is to remove the substrings anyways then this could be a simple one-liner. There are probably more efficient ways to do this with larger strings; regular expressions would be preferable in that case

# Extract all non-substrings
s = "an-example-string"
s_no_dash = s.split('-')
# >>> s_no_dash
# ['an', 'example', 'string']

# Or extract and join them into a sentence
s_no_dash2 = ' '.join(s.split('-'))
# >>> s_no_dash2
# 'an example string'

Did a brief skim of other answers so apologies if this is already up there.

0
def count_substring(string, sub_string):
    c=0
    for i in range(0,len(string)-2):
        if string[i:i+len(sub_string)] == sub_string:
            c+=1
    return c

if __name__ == '__main__':
    string = input().strip()
    sub_string = input().strip()
    
    count = count_substring(string, sub_string)
    print(count)
0

if you only want to use numpy here is a solution

import numpy as np

S= "test test test test"
S2 = 'test'
inds = np.cumsum([len(k)+len(S2) for k in S.split(S2)[:-1]])- len(S2)
print(inds)

-1

By slicing we find all the combinations possible and append them in a list and find the number of times it occurs using count function

s=input()
n=len(s)
l=[]
f=input()
print(s[0])
for i in range(0,n):
    for j in range(1,n+1):
        l.append(s[i:j])
if f in l:
    print(l.count(f))
2
  • When s="test test test test" and f="test" your code prints 4, but OP expected [0,5,10,15] – barbsan Jul 30 '19 at 12:10
  • Have written for a single word will update the code – BONTHA SREEVIDHYA Jul 31 '19 at 13:14
-2

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)
0
-2

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] 
>>> 
2
-3

You can easily use:

string.count('test')!

https://www.programiz.com/python-programming/methods/string/count

Cheers!

3
  • this should be the answer – Maxwell Chandler Mar 12 '19 at 7:18
  • 10
    The string count() method returns the number of occurrences of a substring in the given string. Not their location. – Astrid Apr 10 '19 at 12:21
  • 5
    this doesnt satisfty all cases, s = 'banana' , sub = 'ana'. Sub occurs in this situation twice but doing s.sub('ana') would return 1 – Joey daniel darko Jul 3 '19 at 16:46

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