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How can I count the number of "_" in a string like "bla_bla_blabla_bla"?

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13 Answers 13

570
#include <algorithm>

std::string s = "a_b_c";
std::string::difference_type n = std::count(s.begin(), s.end(), '_');

// alternatively, in C++20
auto count = std::ranges::count(s, '_');

See std::count and std::ranges::count.

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40

Pseudocode:

count = 0
For each character c in string s
  Check if c equals '_'
    If yes, increase count

EDIT: C++ example code:

int count_underscores(string s) {
  int count = 0;

  for (int i = 0; i < s.size(); i++)
    if (s[i] == '_') count++;

  return count;
}

Note that this is code to use together with std::string, if you're using char*, replace s.size() with strlen(s) - but assign that to a variable outside the for loop to avoid scanning the whole string on every loop iteration.

Also note: I can understand you want something "as small as possible", but I'd suggest you to use this solution instead. As you see you can use a function to encapsulate the code for you so you won't have to write out the for loop everytime, but can just use count_underscores("my_string_") in the rest of your code. Using advanced C++ algorithms is certainly possible here, but I think it's overkill.

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  • 40
    Surely we can come up with a totally unreadable templated version with lamba functions and a bind2nd() call ? Commented Oct 5, 2010 at 21:33
  • @Martin I was actually thinking of that. Unfortunately my grasp of C++ functional programming is practically non-existent.
    – jdmichal
    Commented Oct 5, 2010 at 21:34
  • 15
    I think calling a web service would be much more fun than lambdas, then the core algorithm isn't just inscrutable, it's stored elsewhere.
    – Ben Voigt
    Commented Oct 5, 2010 at 21:35
  • 1
    This is no homework question. I am new to c++ and don't have enough knowledge of c++ to program this in a advanced manner. Read: as small as possible. I am able to program this in a simple manner with a for loop and so on, but I was looking for an sophisticated solution, something like the solution of Diego. Next time I will give more information for the reason of the question. Commented Oct 6, 2010 at 7:41
  • Also, you'd want to consume contiguous occurrences in case you did not want duplicates. Like for instance, counting how many pieces you'd get after splitting a string by the desired character. Commented Jun 23, 2016 at 1:26
16

Using the lambda function to check the character is "_" then the only count will be incremented else not a valid character

std::string s = "a_b_c";
size_t count = std::count_if( s.begin(), s.end(), []( char c ){return c =='_';});
std::cout << "The count of numbers: " << count << std::endl;
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  • 5
    Please add an explanation - try not to post just plain blocks of code alone. Commented Aug 7, 2018 at 4:32
  • 1
    What do you think, that your answer offers, what a previous answer hasn't already covered? Please edit and expand your answer.
    – hellow
    Commented Aug 7, 2018 at 6:40
  • 1
    Thank you for this code snippet, which might provide some limited, immediate help. A proper explanation would greatly improve its long-term value by showing why this is a good solution to the problem, and would make it more useful to future readers with other, similar questions. Please edit your answer to add some explanation, including the assumptions you've made. Commented Aug 7, 2018 at 8:52
  • 3
    as @phuclv suggested, there must be also return false statement size_t count = std::count_if( s.begin(), s.end(), []( char c ){if(c =='_') return true; else return false; }); Commented Jan 26, 2021 at 12:39
  • 3
    You don't need the if statement size_t count = std::count_if( s.begin(), s.end(), []( char c ){ return c == '_'; }); Commented May 17, 2021 at 17:04
15
#include <boost/range/algorithm/count.hpp>

std::string str = "a_b_c";
int cnt = boost::count(str, '_');
8

You name it... Lambda version... :)

using namespace boost::lambda;

std::string s = "a_b_c";
std::cout << std::count_if (s.begin(), s.end(), _1 == '_') << std::endl;

You need several includes... I leave you that as an exercise...

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  • 6
    Some of the world's top programmers have spent the last 15years evolving C++ to the point where we can write this - it's not childish! Commented Oct 5, 2010 at 23:08
  • Making a point that those who do not know Perl are forced to reinvent it (badly) - now that would be childish! Commented Oct 5, 2010 at 23:09
  • Oh, come on, this can also be fun! :) @Roger: Yes, it was kind of an answer to a fun comment by Martin Beckett above. @Martin: Well, yes, it is not particularly appealing, but in the expression you can see clearly _1 is refering to the first parameter to the "lambda", and that it is being compared using "==" to the character... C++0x lambda are not much better in shape, but at least they are standard :) Commented Oct 5, 2010 at 23:40
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    It is ridiculous to leave out the includes. Commented May 13, 2013 at 11:07
  • 3
    why all the complexity when std::count already does all what is needed ? Commented Jun 22, 2019 at 7:50
7

Count character occurrences in a string is easy:

#include <bits/stdc++.h>
using namespace std;
int main()
{
    string s="Sakib Hossain";
    int cou=count(s.begin(),s.end(),'a');
    cout<<cou;
}
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  • 5
    -1 This is the same as the existing top answer from six years earlier – what was this meant to add? There is one difference: this answer uses the wrong header file. stdc++.h is specific to GCC, and even with that compiler it's only intended for use in precompiled headers. Commented Jun 24, 2018 at 19:25
  • 9
    Recommended reading: Why should I not #include <bits/stdc++.h>? Commented Oct 24, 2018 at 10:22
4

There are several methods of std::string for searching, but find is probably what you're looking for. If you mean a C-style string, then the equivalent is strchr. However, in either case, you can also use a for loop and check each character—the loop is essentially what these two wrap up.

Once you know how to find the next character given a starting position, you continually advance your search (i.e. use a loop), counting as you go.

4

I would have done it this way :

#include <iostream>
#include <string>
using namespace std;
int main()
{

int count = 0;
string s("Hello_world");

for (int i = 0; i < s.size(); i++) 
    {
       if (s.at(i) == '_')    
           count++;
    }
cout << endl << count;
cin.ignore();
return 0;
}
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2

You can find out occurrence of '_' in source string by using string functions. find() function takes 2 arguments , first - string whose occurrences we want to find out and second argument takes starting position.While loop is use to find out occurrence till the end of source string.

example:

string str2 = "_";
string strData = "bla_bla_blabla_bla_";

size_t pos = 0,pos2;

while ((pos = strData.find(str2, pos)) < strData.length()) 
{
    printf("\n%d", pos);
    pos += str2.length();
} 
0

I would have done something like that :)

const char* str = "bla_bla_blabla_bla";
char* p = str;    
unsigned int count = 0;
while (*p != '\0')
    if (*p++ == '_')
        count++;
0

The range based for loop comes in handy

int countUnderScores(string str)
{
   int count = 0;

   for (char c: str)
     if (c == '_') count++;
   
   return count;
}
int main()
{
   string str = "bla_bla_blabla_bla";
   int count = countUnderScores(str);
   cout << count << endl;
}
0

Much simpler in C++23 (May be some C++20 compilers also support)

    //Inputs : Your string,Search criteria
    int num_items = std::ranges::count("bla_bla_blabla_bla",'_');
    
    //Print output
    std::cout << num_items << std::endl; //3
-5

Try

#include <iostream>
 #include <string>
 using namespace std;


int WordOccurrenceCount( std::string const & str, std::string const & word )
{
       int count(0);
       std::string::size_type word_pos( 0 );
       while ( word_pos!=std::string::npos )
       {
               word_pos = str.find(word, word_pos );
               if ( word_pos != std::string::npos )
               {
                       ++count;

         // start next search after this word 
                       word_pos += word.length();
               }
       }

       return count;
}


int main()
{

   string sting1="theeee peeeearl is in theeee riveeeer";
   string word1="e";
   cout<<word1<<" occurs "<<WordOccurrenceCount(sting1,word1)<<" times in ["<<sting1 <<"] \n\n";

   return 0;
}

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