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  1. Prepare
  2. Algorithms
  3. Implementation
  4. Subarray Division
  5. Discussions

Subarray Division

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3043 Discussions

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  • alban_tyrex
     + 0 comments

    Here is my O(N) c++ solution, you can watch the explanation here : https://youtu.be/L2fkDuGrxiI

    int birthday(vector<int> s, int d, int m) {
    if(s.size() < m) return 0;
    int su = accumulate(s.begin(), s.begin() + m, 0), result = 0;
    if(su == d) result++;
    for(int i = m; i < s.size(); i++){
        su += s[i];
        su -= s[i-m];
        if(su == d) result++;
    }
    return result;
 }

  • MuriLovin
     + 0 comments

    Go solution:

    func birthday(s []int32, d int32, m int32) int32 {
    var ways int32 = 0
    
    var geralSum int32 = 0
    for i, value := range s {
        geralSum += value
        segmentSum := s[i]
        
        for j := int32(1); j < m; j++ {
            newIndex := int32(i) + j
            
            if newIndex >= int32(len(s)) {
                break    
            }
            
            segmentSum += s[newIndex]
        }

        if segmentSum == d {
            ways += 1
        }
    }
    
    if geralSum == m {
        ways += 1     
    }
    
    return ways
}

  • techcountryglow
     + 0 comments

    Can you help me to integrate this code algorithms with my [Microsoft Copilot Solution](https://codehyper.com.au/copilot/ ) page? I want to use it on my WordPress webiste.

  • ArawatAt477_99
     + 0 comments

    Python 3 Solution

    def birthday(s, d, m):
    selected_sum = sum(s[:m])
    num_of_ways = 0
    
    if selected_sum == d:
        num_of_ways += 1
    
    for i in range(len(s) - m):    
        selected_sum += s[i + m] - s[i]
        
        if selected_sum == d:
            num_of_ways += 1
    
    return num_of_ways

  • z_sudnik
     + 0 comments

    Kotlin 

    fun birthday(s: Array<Int>, d: Int, m: Int): Int {
        // Write your code here
        var many = 0
        if(m> s.size) return 0
        for( i in 0..s.size-m){
            var nBar  = s.slice(i..m-1+i)
            if( nBar.reduce { acc, s -> acc + s } == d){
                many++
            }
        }
        return many
    }