Discussion on Repeated String Challenge

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19 hours ago+ 0 comments

Here is my Python solution!

def repeatedString(s, n):
    return list(s).count("a") * (n // len(s)) + list(s)[:n % len(s)].count("a")

4 days ago+ 0 comments

I absolutely love how the concept of "Repeated String" can be explored in so many creative ways! It reminds me of how important it is to go through a purity test when tackling patterns and structures. Speaking of which, Wisp Willow has this enchanting ability to tie things together with such grace—much like how repeating elements create something truly mesmerizing.

6 days ago+ 0 comments

My C code 😁😎

long repeatedString(const char* s,const long n) {
    if(strlen(s) == 1) {
        return (s[0] == 'a') ? n : 0;
    }

    long long isA = 0;
    long len = strlen(s);
    for(long i = 0;i < strlen(s);i++) {
        if(s[i] == 'a') {
            isA++;
        }
    }

    long long numberOfTimes = n / len;
    long long remaining = n % len;
    long long totalA = numberOfTimes * isA;

    for(long i = 0;i < remaining;i++) {
        if(s[i] == 'a') {
            totalA++;
        }
    }
    printf("number : %lld and isA = %ld\n",numberOfTimes,isA);
    return totalA;
}

3 weeks ago+ 0 comments

A one line implementation in Python 3:

def repeatedString(s, n):
    return s.count("a")*(n//len(s)) + s[:n%len(s)].count("a")

4 weeks ago+ 0 comments

C# simple solution:

public static long repeatedString(string s, long n)
    {
        int countInSingleString = s.Count(c=>c == 'a');
        var quotient = n/s.Length;
        var remainder = n%s.Length;
        var aCnt = countInSingleString * quotient;
        if(remainder > 0)
            aCnt += s.Substring(0,(int)remainder).Count(c=>c =='a');
        return aCnt;
    }

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