278

How can I count the number of times a given substring is present within a string in Python?

For example:

>>> 'foo bar foo'.numberOfOccurrences('foo')
2

To get indices of the substrings, see How to find all occurrences of a substring?.

6

36 Answers 36

431

string.count(substring), like in:

>>> "abcdabcva".count("ab")
2

This is for non overlapping occurrences.
If you need to count overlapping occurrences, you'd better check the answers here, or just check my other answer below.

11
  • 22
    What about this: "GCAAAAAG".count("AAA") which gives 1, while the correct answer is 3?
    – cartoonist
    May 9, 2015 at 15:52
  • 22
    count is obviously for non-overlapping matches - which is most often what one wants to do. stackoverflow.com/questions/5616822/… deals with overlapping matches - but a simple, if expensive, expression is: sum("GCAAAAAGH"[i:].startswith("AAA") for i in range(len("GCAAAAAGH")))
    – jsbueno
    Jun 26, 2015 at 14:08
  • Is it possible to count/search multiple words at once? like string.count(substring1, substring2) Mar 15, 2017 at 2:47
  • @SushantKulkarni No. Though there's one logical way of doing such a thing: string.count(substring1) + string.count(substring2). But keep in mind that this is not an efficient method if there are a lot of substrings because counting each substring requires an iteration over the main string.
    – Faheel
    Nov 22, 2017 at 18:15
  • @SushantKulkarni doing ''.join([substring1, substring2]).count(pattern) is more efficient than the solution suggested above. I checked using timeit. Jan 15, 2018 at 14:48
36
s = 'arunununghhjj'
sb = 'nun'
results = 0
sub_len = len(sb)
for i in range(len(s)):
    if s[i:i+sub_len] == sb:
        results += 1
print results
1
  • 7
    Additional explanation would improve your answer.
    – ryanyuyu
    Jun 16, 2015 at 14:28
21

Depending what you really mean, I propose the following solutions:

  1. You mean a list of space separated sub-strings and want to know what is the sub-string position number among all sub-strings:

    s = 'sub1 sub2 sub3'
    s.split().index('sub2')
    >>> 1
    
  2. You mean the char-position of the sub-string in the string:

    s.find('sub2')
    >>> 5
    
  3. You mean the (non-overlapping) counts of appearance of a su-bstring:

    s.count('sub2')
    >>> 1
    s.count('sub')
    >>> 3
    
5
  • Try to find 'sub' or 'su'
    – obohovyk
    Jan 25, 2017 at 17:45
  • I guess you mean s.find("su") and wonder why you get 0? Well this is the first index of the sub-string "su" in s. Try "ub" and you will get 1, try e.g. "z" and you will get -1 as in no substring found. Jan 25, 2017 at 18:33
  • I mean you always find only first index, but not all indexes, @arun-kumar-khattri gived correct answer
    – obohovyk
    Jan 25, 2017 at 22:03
  • I'm relieved that @arun-kumar-khattri gave the "correct" answer you were looking for. Maybe you should take an additional look at jsbueno's comments, sometimes they answer questions you just haven't asked yet. Jan 26, 2017 at 2:27
  • Like for the third approach. BTW, I think you should mention that it works for non-overlapping cases. Sep 6, 2017 at 11:03
15

The best way to find overlapping sub-strings in a given string is to use a regular expression. With lookahead, it will find all the overlapping matches using the regular expression library's findall(). Here, left is the substring and right is the string to match.

>>> len(re.findall(r'(?=aa)', 'caaaab'))
3
2
  • 4
    maybe you could add len(re.findall(f'(?={sub_string})','caaaab')) to insert the sub string dynamically :) Apr 18, 2020 at 19:56
  • @AmreshGiri You'd need to add re.escape(sub_string) to prevent regex metacharacters being interpreted.
    – wjandrea
    Jan 26 at 18:40
12

To find overlapping occurences of a substring in a string in Python 3, this algorithm will do:

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

I myself checked this algorithm and it worked.

2
  • 2
    Small tip: Instead of saying "It works because I checked it", you could include an example on an online service like repl.it with some sample data.
    – Valentin
    Jul 15, 2017 at 15:48
  • 2
    thank you for your comment Valentin! It's my first answer here. I will improve myself from my next answers. Jul 15, 2017 at 17:18
11

You can count the frequency using two ways:

  1. Using the count() in str:

    a.count(b)

  2. Or, you can use:

    len(a.split(b))-1

Where a is the string and b is the substring whose frequency is to be calculated.

10

Scenario 1: Occurrence of a word in a sentence. eg: str1 = "This is an example and is easy". The occurrence of the word "is". lets str2 = "is"

count = str1.count(str2)

Scenario 2 : Occurrence of pattern in a sentence.

string = "ABCDCDC"
substring = "CDC"

def count_substring(string,sub_string):
    len1 = len(string)
    len2 = len(sub_string)
    j =0
    counter = 0
    while(j < len1):
        if(string[j] == sub_string[0]):
            if(string[j:j+len2] == sub_string):
                counter += 1
        j += 1

    return counter

Thanks!

2
  • do we really need this check if(string[j] == sub_string[0]): ? isn't it automatically covered in subsequent if condition? Feb 13, 2019 at 6:34
  • AnandViswanathan89,Both if conditions are required, if(string[j] == sub_string[0]) checks for the initial character match within the main string, which has to be performed for the entire characters of the main string and if(string[j:j+len2] == sub_string) performs the substring occurrence. If it is for the first occurrence then the second if the condition would have sufficed.
    – Amith V V
    Feb 14, 2019 at 8:21
8

The current best answer involving method count doesn't really count for overlapping occurrences and doesn't care about empty sub-strings as well. For example:

>>> a = 'caatatab'
>>> b = 'ata'
>>> print(a.count(b)) #overlapping
1
>>>print(a.count('')) #empty string
9

The first answer should be 2 not 1, if we consider the overlapping substrings. As for the second answer it's better if an empty sub-string returns 0 as the asnwer.

The following code takes care of these things.

def num_of_patterns(astr,pattern):
    astr, pattern = astr.strip(), pattern.strip()
    if pattern == '': return 0

    ind, count, start_flag = 0,0,0
    while True:
        try:
            if start_flag == 0:
                ind = astr.index(pattern)
                start_flag = 1
            else:
                ind += 1 + astr[ind+1:].index(pattern)
            count += 1
        except:
            break
    return count

Now when we run it:

>>>num_of_patterns('caatatab', 'ata') #overlapping
2
>>>num_of_patterns('caatatab', '') #empty string
0
>>>num_of_patterns('abcdabcva','ab') #normal
2
5

The question isn't very clear, but I'll answer what you are, on the surface, asking.

A string S, which is L characters long, and where S[1] is the first character of the string and S[L] is the last character, has the following substrings:

  • The null string ''. There is one of these.
  • For every value A from 1 to L, for every value B from A to L, the string S[A]..S[B] (inclusive). There are L + L-1 + L-2 + ... 1 of these strings, for a total of 0.5*L*(L+1).
  • Note that the second item includes S[1]..S[L], i.e. the entire original string S.

So, there are 0.5*L*(L+1) + 1 substrings within a string of length L. Render that expression in Python, and you have the number of substrings present within the string.

4

One way is to use re.subn. For example, to count the number of occurrences of 'hello' in any mix of cases you can do:

import re
_, count = re.subn(r'hello', '', astring, flags=re.I)
print('Found', count, 'occurrences of "hello"')
1
4

How about a one-liner with a list comprehension? Technically its 93 characters long, spare me PEP-8 purism. The regex.findall answer is the most readable if its a high level piece of code. If you're building something low level and don't want dependencies, this one is pretty lean and mean. I'm giving the overlapping answer. Obviously just use count like the highest score answer if there isn't overlap.

def count_substring(string, sub_string):
    return len([i for i in range(len(string)) if string[i:i+len(sub_string)] == sub_string])
4

If you want to count all the sub-string (including overlapped) then use this method.

import re
def count_substring(string, sub_string):
    regex = '(?='+sub_string+')'
    # print(regex)
    return len(re.findall(regex,string))
4

I will keep my accepted answer as the "simple and obvious way to do it", however, it does not cover overlapping occurrences. Finding out those can be done naively, with multiple checking of the slices - as in:

sum("GCAAAAAGH"[i:].startswith("AAA") for i in range(len("GCAAAAAGH")))

which yields 3.

Or it can be done by trick use of regular expressions, as can be seen at How to use regex to find all overlapping matches - and it can also make for fine code golfing.

This is my "hand made" count for overlapping occurrences of patterns in a string which tries not to be extremely naive (at least it does not create new string objects at each interaction):

def find_matches_overlapping(text, pattern):
    lpat = len(pattern) - 1
    matches = []
    text = array("u", text)
    pattern = array("u", pattern)
    indexes = {}
    for i in range(len(text) - lpat):
        if text[i] == pattern[0]:
            indexes[i] = -1
        for index, counter in list(indexes.items()):
            counter += 1
            if text[i] == pattern[counter]:
                if counter == lpat:
                    matches.append(index)
                    del indexes[index]
                else:
                    indexes[index] = counter
            else:
                del indexes[index]
    return matches
            
def count_matches(text, pattern):
    return len(find_matches_overlapping(text, pattern))
3

For overlapping count we can use use:

def count_substring(string, sub_string):
    count=0
    beg=0
    while(string.find(sub_string,beg)!=-1) :
        count=count+1
        beg=string.find(sub_string,beg)
        beg=beg+1
    return count

For non-overlapping case we can use count() function:

string.count(sub_string)
2

Overlapping occurences:

def olpcount(string,pattern,case_sensitive=True):
    if case_sensitive != True:
        string  = string.lower()
        pattern = pattern.lower()
    l = len(pattern)
    ct = 0
    for c in range(0,len(string)):
        if string[c:c+l] == pattern:
            ct += 1
    return ct

test = 'my maaather lies over the oceaaan'
print test
print olpcount(test,'a')
print olpcount(test,'aa')
print olpcount(test,'aaa')

Results:

my maaather lies over the oceaaan
6
4
2
2

Here's a solution that works for both non-overlapping and overlapping occurrences. To clarify: an overlapping substring is one whose last character is identical to its first character.

def substr_count(st, sub):
    # If a non-overlapping substring then just
    # use the standard string `count` method
    # to count the substring occurences
    if sub[0] != sub[-1]:
        return st.count(sub)

    # Otherwise, create a copy of the source string,
    # and starting from the index of the first occurence
    # of the substring, adjust the source string to start
    # from subsequent occurences of the substring and keep
    # keep count of these occurences
    _st = st[::]
    start = _st.index(sub)
    cnt = 0

    while start is not None:
        cnt += 1
        try:
            _st = _st[start + len(sub) - 1:]
            start = _st.index(sub)
        except (ValueError, IndexError):
            return cnt

    return cnt
2
  • an overlapping substring is one whose last character is identical to its first character and whose length is > 1 - otherwise 'a', for example, would be an overlapping substring. +1 for the clever thought though.
    – AcK
    Jul 23, 2021 at 17:29
  • After some more thinking I came to the conclusion that this definition (regarding the first and the last character) is wrong - consider the substring laplap.
    – AcK
    Jul 24, 2021 at 20:44
2

If you're looking for a power solution that works every case this function should work:

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

If you want to find out the count of substring inside any string; please use below code. The code is easy to understand that's why i skipped the comments. :)

string=raw_input()
sub_string=raw_input()
start=0
answer=0
length=len(string)
index=string.find(sub_string,start,length)
while index<>-1:
    start=index+1
    answer=answer+1
    index=string.find(sub_string,start,length)
print answer
1

You could use the startswith method:

def count_substring(string, sub_string):
    x = 0
    for i in range(len(string)):
        if string[i:].startswith(sub_string):
            x += 1
    return x
1
def count_substring(string, sub_string):
    inc = 0
    for i in range(0, len(string)):
        slice_object = slice(i,len(sub_string)+i)
        count = len(string[slice_object])
        if(count == len(sub_string)):
            if(sub_string == string[slice_object]):
                inc = inc + 1
    return inc

if __name__ == '__main__':
    string = input().strip()
    sub_string = input().strip()

    count = count_substring(string, sub_string)
    print(count)
1
  • An explanation to go along with this code would be helpful.
    – alexherm
    Feb 12, 2020 at 19:45
1
def count_substring(string, sub_string):
    k=len(string)
    m=len(sub_string)
    i=0
    l=0
    count=0
    while l<k:
        if string[l:l+m]==sub_string:
            count=count+1
        l=l+1
    return count

if __name__ == '__main__':
    string = input().strip()
    sub_string = input().strip()

    count = count_substring(string, sub_string)
    print(count)
1
  • Hi. Please explain your solution. Jun 12, 2020 at 8:30
1

2+ others have already provided this solution, and I even upvoted one of them, but mine is probably the easiest for newbies to understand.

def count_substring(string, sub_string):
    slen = len(string)
    sslen = len(sub_string)
    range_s = slen - sslen + 1
    count = 0
    for i in range(range_s):
        if string[i:i+sslen] == sub_string:
            count += 1
    return count
1
  • FWIW, slen and range_s are only used once, and I don't see any reason to make them variables, so you might as well do range(len(string)-sslen+1).
    – wjandrea
    Jan 26 at 19:07
0

I'm not sure if this is something looked at already, but I thought of this as a solution for a word that is 'disposable':

for i in xrange(len(word)):
if word[:len(term)] == term:
    count += 1
word = word[1:]

print count

Where word is the word you are searching in and term is the term you are looking for

0
string="abc"
mainstr="ncnabckjdjkabcxcxccccxcxcabc"
count=0
for i in range(0,len(mainstr)):
    k=0
    while(k<len(string)):
        if(string[k]==mainstr[i+k]):
            k+=1
        else:
            break   
    if(k==len(string)):
        count+=1;   
print(count)
2
  • 2
    Maybe you can elaborate on how this solution is different from the other, is there a special case that it is able to solve?
    – mpaskov
    Mar 7, 2017 at 16:13
  • 2
    While this code may answer the question, providing additional context regarding how and/or why it solves the problem would improve the answer's long-term value. Mar 7, 2017 at 18:50
0
my_string = """Strings are amongst the most popular data types in Python. 
               We can create the strings by enclosing characters in quotes.
               Python treats single quotes the same as double quotes."""

Count = my_string.lower().strip("\n").split(" ").count("string")
Count = my_string.lower().strip("\n").split(" ").count("strings")
print("The number of occurance of word String is : " , Count)
print("The number of occurance of word Strings is : " , Count)
0

For a simple string with space delimitation, using Dict would be quite fast, please see the code as below

def getStringCount(mnstr:str, sbstr:str='')->int:
    """ Assumes two inputs string giving the string and 
        substring to look for number of occurances 
        Returns the number of occurances of a given string
    """
    x = dict()
    x[sbstr] = 0
    sbstr = sbstr.strip()
    for st in mnstr.split(' '):
        if st not in [sbstr]:
            continue
        try:
            x[st]+=1
        except KeyError:
            x[st] = 1
    return x[sbstr]

s = 'foo bar foo test one two three foo bar'
getStringCount(s,'foo')
0

Below logic will work for all string & special characters

def cnt_substr(inp_str, sub_str):
    inp_join_str = ''.join(inp_str.split())
    sub_join_str = ''.join(sub_str.split())

    return inp_join_str.count(sub_join_str)

print(cnt_substr("the sky is   $blue and not greenthe sky is   $blue and not green", "the sky"))
0

Here's the solution in Python 3 and case insensitive:

s = 'foo bar foo'.upper()
sb = 'foo'.upper()
results = 0
sub_len = len(sb)
for i in range(len(s)):
    if s[i:i+sub_len] == sb:
        results += 1
print(results)
0
0
j = 0
    while i < len(string):
        sub_string_out = string[i:len(sub_string)+j]
        if sub_string == sub_string_out:
            count += 1
        i += 1
        j += 1
    return count
1
  • 2
    While all answers are appreciated, code only answers tend to not explain the subject very good. Please add some context.
    – creyD
    Jul 24, 2019 at 22:52
0
#counting occurence of a substring in another string (overlapping/non overlapping)
s = input('enter the main string: ')# e.g. 'bobazcbobobegbobobgbobobhaklpbobawanbobobobob'
p=input('enter the substring: ')# e.g. 'bob'

counter=0
c=0

for i in range(len(s)-len(p)+1):
    for j in range(len(p)):
        if s[i+j]==p[j]:
            if c<len(p):
                c=c+1
                if c==len(p):
                    counter+=1
                    c=0
                    break
                continue
        else:
            break
print('number of occurences of the substring in the main string is: ',counter)

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