55

I am trying to figure out how many times a string occurs in a string. For example:

nStr = '000123000123'

Say the string I want to find is 123. Obviously it occurs twice in nStr but I am having trouble implementing this logic into Python. What I have got at the moment:

pattern = '123'
count = a = 0
while pattern in nStr[a:]:
    a = nStr[a:].find(pattern)+1
    count += 1
return count

The answer it should return is 2. I'm stuck in an infinite loop at the moment.

I was just made aware that count is a much better way to do it but out of curiosity, does anyone see a way to do it similar to what I have already got?

  • Thanks Ashwini.. I had forgotten about count! – user1294377 Jul 13 '12 at 19:03

10 Answers 10

85

Use str.count:

>>> nStr = '000123000123'
>>> nStr.count('123')
2

A working version of your code:

nStr = '000123000123'
pattern = '123'
count =0
flag=True
start=0
while flag:
    a = nStr.find(pattern,start)  # find() returns -1 if the word is not found, 
                                  #start i the starting index from the search starts(default value is 0)
    if a==-1:          #if pattern not found set flag to False
        flag=False
    else:               # if word is found increase count and set starting index to a+1
        count+=1        
        start=a+1
print(count)
22

The problem with count() and these methods shown here is the case of overlapping substrings.

For example: "aaaaaa".count("aaa") returns 2

If you want it to return 4 [(aaa)aaa, a(aaa)aa, aa(aaa)a, aaa(aaa)] you might try something like this:

def my_count(string, substring):
    string_size = len(string)
    substring_size = len(substring)
    count = 0
    for i in xrange(0,string_size-substring_size+1):
        if string[i:i+substring_size] == substring:
            count+=1
    return count

my_count("aaaaaa", "aaa")
# 4

Don't know if there's a better way of doing it, but posting just to clarify the way count() works.

  • 3
    Note that xrange() was renamed to range() in Python 3. – TawabG Jun 7 '19 at 17:23
6
import re

pattern = '123'

n =re.findall(pattern, string)

We can say that the substring 'pattern' appears len(n) times in 'string'.

  • This computes the count WITHOUT overlaps! – B Custer Sep 23 '19 at 19:44
2

In case you are searching how to solve this problem for overlapping cases.

s = 'azcbobobegghaklbob'
str = 'bob'
results = 0
sub_len = len(str) 
for i in range(len(s)):
    if s[i:i+sub_len] == str: 
        results += 1
print (results)

Will result in 3 because: [azc(bob)obegghaklbob] [azcbo(bob)egghaklbob] [azcbobobegghakl(bob)]

1

I'm pretty new, but I think this is a good solution? maybe?

def count_substring(str, sub_str):
    count = 0
    for i, c in enumerate(str):
        if sub_str == str[i:i+2]:
            count += 1
    return count
0

string.count(substring) is not useful in case of overlapping.

My approach:

def count_substring(string, sub_string):

    length = len(string)
    counter = 0
    for i in range(length):
        for j in range(length):
            if string[i:j+1] == sub_string:
                counter +=1
    return counter
0

You are not changing a with each loop. You should put:

a += nStr[a:].find(pattern)+1

...instead of:

a = nStr[a:].find(pattern)+1
0
def count_substring(string, substring):
         c=0
         l=len(sub_string)
         for i in range(len(string)):
                 if string [i:i+l]==sub_string:
                          c=c+1
         return c
string=input().strip()
sub_string=input().strip()

count= count_substring(string,sub_string)
print(count)
0

As mentioned by @João Pesce and @gaurav, count() is not useful in the case of overlapping substrings, try this out...

def count_substring(string, sub_string):
    c=0
    for i in range(len(string)):
        if(string[i:i+len(sub_string)]==sub_string):
            c = c+1
    return c
0
def countOccurance(str,pat):
    count=0
    wordList=str.split()
    for word in wordList:
        if pat in word:
            count+=1
    return count

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