-7

This is the code(cpp)

    #include <iostream>
    #include <string>
    #include <numeric>//to import the accumulate function
    #include <vector>
    #include <algorithm>

    using namespace std;
    int main(){
    vector<long long> vi;
     string s; //this contains the long number its better not to type here
    int k=0,sum=0;
     for(int i=0;i<s.length();i++){
      k=(int)s[i]-(int)'0';
     cout<<k<<endl;
       vi.push_back(k);
 
      }
      for(int i:vi){
        cout<<i<<endl;
      }
         cout<<accumulate(vi.begin(),vi.end(),0);

    
        } 

whatever i do i get the answer 22660 i tried using without accumulate still 22660 ,i dont know why this happens

  • 4
    It's kind of hard to tell why you get 22660 without knowing what the number is. – john Jul 3 at 18:29
  • Hint: read the number as a string. Access the digits like: int digit_value = number_as_string[x] - '0'; – Thomas Matthews Jul 3 at 18:31
  • @cigien Summing 5000 digits shouldn't overflow an int. – john Jul 3 at 18:32
  • @ThomasMatthews That's what he is doing or am I missing something? – john Jul 3 at 18:32
  • 1
    Why are you placing the digit into a vector after isolating it? Why not add the digit to a sum variable directly? – Thomas Matthews Jul 3 at 18:35
0

I don't understand why you are using std::vector. You could calculate the sum without using the vector:

int k=0,sum=0;
for(int i=0;i<s.length();i++)
{
    k = s[i]-'0';
    sum += k;
}

Note: if you are a little paranoid of the sum value fitting into an integer, you can use an unsigned integer since digits can't be negative.

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