50

What's the best way to count the number of occurrences of a given string, including overlap in python? is it the most obvious way:

def function(string, str_to_search_for):
      count = 0
      for x in xrange(len(string) - len(str_to_search_for) + 1):
           if string[x:x+len(str_to_search_for)] == str_to_search_for:
                count += 1
      return count


function('1011101111','11')
returns 5

?

or is there a better way in python?

  • Have you tried coding something? If not, please try, and provide us the code you tried so we can help you with it instead of just giving the solution out. – Valentin Lorentz Jan 14 '16 at 8:47

22 Answers 22

69

Well, this might be faster since it does the comparing in C:

def occurrences(string, sub):
    count = start = 0
    while True:
        start = string.find(sub, start) + 1
        if start > 0:
            count+=1
        else:
            return count
  • 5
    Definitely +1. Although I'd prefer count= start= 0. No real reason for tuple unpacking here. – tzot Jun 4 '10 at 0:15
  • 4
    @ΤΖΩΤΖΙΟΥ: Damn, I didn't know you could do that. More precisely, I must have forgotten, since I'm sure I went through the whole tutorial when I was first learning (and yes, I've confirmed it's in the tutorial). But I never see anyone use chained assignment; whereas I see tuple assignment all the time. Go fig. – John Y Jun 4 '10 at 3:05
  • Very useful, this inspired a small part of an overlapping string count I implemented in BioPython, let me know if you'd like some kind of attribution added github.com/biopython/biopython/blob/master/Bio/Seq.py#L486 – Chris_Rands Oct 16 '17 at 20:36
38
>>> import re
>>> text = '1011101111'
>>> len(re.findall('(?=11)', text))
5

If you didn't want to load the whole list of matches into memory, which would never be a problem! you could do this if you really wanted:

>>> sum(1 for _ in re.finditer('(?=11)', text))
5

As a function (re.escape makes sure the substring doesn't interfere with the regex):

>>> def occurrences(text, sub):
        return len(re.findall('(?={0})'.format(re.escape(sub)), text))

>>> occurrences(text, '11')
5
  • @brainLoop example? – jamylak Jul 1 '18 at 9:17
  • 1
    my mistake.^_^. – brainLoop Jul 7 '18 at 18:57
11

You can also try using the new Python regex module, which supports overlapping matches.

import regex as re

def count_overlapping(text, search_for):
    return len(re.findall(search_for, text, overlapped=True))

count_overlapping('1011101111','11')  # 5
9

Python's str.count counts non-overlapping substrings:

In [3]: "ababa".count("aba")
Out[3]: 1

Here are a few ways to count overlapping sequences, I'm sure there are many more :)

Look-ahead regular expressions

How to find overlapping matches with a regexp?

In [10]: re.findall("a(?=ba)", "ababa")
Out[10]: ['a', 'a']

Generate all substrings

In [11]: data = "ababa"
In [17]: sum(1 for i in range(len(data)) if data.startswith("aba", i))
Out[17]: 2
3
s = "bobobob"
sub = "bob"
ln = len(sub)
print(sum(sub == s[i:i+ln] for i in xrange(len(s)-(ln-1))))
3

How to find a pattern in another string with overlapping

This function (another solution!) receive a pattern and a text. Returns a list with all the substring located in the and their positions.

def occurrences(pattern, text):
    """
    input: search a pattern (regular expression) in a text
    returns: a list of substrings and their positions 
    """
    p = re.compile('(?=({0}))'.format(pattern))
    matches = re.finditer(p, text)
    return [(match.group(1), match.start()) for match in matches]

print (occurrences('ana', 'banana'))
print (occurrences('.ana', 'Banana-fana fo-fana'))

[('ana', 1), ('ana', 3)]
[('Bana', 0), ('nana', 2), ('fana', 7), ('fana', 15)]

2

My answer, to the bob question on the course:

s = 'azcbobobegghaklbob'
total = 0
for i in range(len(s)-2):
    if s[i:i+3] == 'bob':
        total += 1
print 'number of times bob occurs is: ', total
2
def count_substring(string, sub_string):
    count = 0
    for pos in range(len(string)):
        if string[pos:].startswith(sub_string):
            count += 1
    return count

This could be the easiest way.

1

Here is my edX MIT "find bob"* solution (*find number of "bob" occurences in a string named s), which basicaly counts overlapping occurrences of a given substing:

s = 'azcbobobegghakl'
count = 0

while 'bob' in s:
    count += 1 
    s = s[(s.find('bob') + 2):]

print "Number of times bob occurs is: {}".format(count)
1

That can be solved using regex.

import re
def function(string, sub_string):
    match = re.findall('(?='+sub_string+')',string)
    return len(match)
1
def count_substring(string, sub_string):
    counter = 0
    for i in range(len(string)):
        if string[i:].startswith(sub_string):
        counter = counter + 1
    return counter

Above code simply loops throughout the string once and keeps checking if any string is starting with the particular substring that is being counted.

  • Code-only answers are discouraged because they do not explain how they resolve the issue. Please update your answer to explain how this improves on the other accepted and upvoted answers this question already has. Also, this question is 7 years old, your efforts would be more appreciated by users who have recent unanswered questions. Please review How do I write a good answer. – FluffyKitten Sep 20 '17 at 0:10
  • Above code simply loops throughout the string once and keeps checking if any string is starting with the particular substring that is being counted. – Anshul Tiwari Sep 20 '17 at 13:46
  • You should edit your answer to add this information, as it can be missed in the comments. – FluffyKitten Sep 20 '17 at 18:55
1

A fairly pythonic way would be to use list comprehension here, although it probably wouldn't be the most efficient.

sequence = 'abaaadcaaaa'
substr = 'aa'

counts = sum([
    sequence.startswith(sub, i) for i in range(len(sequence))
])
print(counts)  # 5

The list would be [False, False, True, False, False, False, True, True, False, False] as it checks all indexes through the string, and because int(True) == 1, sum gives us the total number of matches.

0
def count_overlaps (string, look_for):
    start   = 0
    matches = 0

    while True:
        start = string.find (look_for, start)
        if start < 0:
            break

        start   += 1
        matches += 1

    return matches

print count_overlaps ('abrabra', 'abra')
0

Function that takes as input two strings and counts how many times sub occurs in string, including overlaps. To check whether sub is a substring, I used the in operator.

def count_Occurrences(string, sub):
    count=0
    for i in range(0, len(string)-len(sub)+1):
        if sub in string[i:i+len(sub)]:
            count=count+1
    print 'Number of times sub occurs in string (including overlaps): ', count
0

For a duplicated question i've decided to count it 3 by 3 and comparing the string e.g.

counted = 0

for i in range(len(string)):

    if string[i*3:(i+1)*3] == 'xox':
       counted = counted +1

print counted
0

An alternative very close to the accepted answer but using while as the if test instead of including if inside the loop:

def countSubstr(string, sub):
    count = 0
    while sub in string:
        count += 1
        string = string[string.find(sub) + 1:]
    return count;

This avoids while True: and is a little cleaner in my opinion

0

If strings are large, you want to use Rabin-Karp, in summary:

  • a rolling window of substring size, moving over a string
  • a hash with O(1) overhead for adding and removing (i.e. move by 1 char)
  • implemented in C or relying on pypy
0

This is another example of using str.find() but a lot of the answers make it more complicated than necessary:

def occurrences(text, sub):
    c, n = 0, text.find(sub)
    while n != -1:
        c += 1
        n = text.find(sub, n+1)
    return c

In []:
occurrences('1011101111', '11')

Out[]:
5
0

Given

sequence = '1011101111'
sub = "11"

Code

In this particular case:

sum(x == tuple(sub) for x in zip(sequence, sequence[1:]))
# 5

More generally, this

windows = zip(*([sequence[i:] for i, _ in enumerate(sequence)][:len(sub)]))
sum(x == tuple(sub) for x in windows)
# 5

or extend to generators:

import itertools as it


iter_ = (sequence[i:] for i, _ in enumerate(sequence))
windows = zip(*(it.islice(iter_, None, len(sub))))
sum(x == tuple(sub) for x in windows)

Alternative

You can use more_itertools.locate:

import more_itertools as mit


len(list(mit.locate(sequence, pred=lambda *args: args == tuple(sub), window_size=len(sub))))
# 5
0

A simple way to count substring occurrence is to use count():

>>> s = 'bobob'
>>> s.count('bob')
1

You can use replace () to find overlapping strings if you know which part will be overlap:

>>> s = 'bobob'
>>> s.replace('b', 'bb').count('bob')
2

Note that besides being static, there are other limitations:

>>> s = 'aaa'
>>> count('aa') # there must be two occurrences
1 
>>> s.replace('a', 'aa').count('aa')
3
-2

If you want to count permutation counts of length 5 (adjust if wanted for different lengths):

def MerCount(s):
  for i in xrange(len(s)-4):
    d[s[i:i+5]] += 1
return d
  • 'count permutation counts' does not make much sense to me. d is not a defined name. If the code did run, it would not answer the question. – Terry Jan Reedy Mar 7 '15 at 20:43
-2

sum([ 1 for _ in range(len(string)-len(str_to_search_for)+1) if string[_:_+len(str_to_search_for)] == str_to_search_for])

In a list comprehension, we slide through bigger string by one position at a time with the sliding window of length of smaller string. We can compute the sliding count by substracting the length of smaller string from bigger string. For each slide, we compare that part of bigger string with our smaller string and generate 1 in a list if match found. Sum of all of these 1's in a list will give us total number of matches found.

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