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  1. Prepare
  2. Algorithms
  3. Implementation
  4. Sherlock and Squares
  5. Discussions

Sherlock and Squares

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1579 Discussions

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  • prajjwal077
     + 0 comments

    Easiest Javascript solution without any loop:

    function squares(a, b) {
    let sqrtA=Math.ceil(Math.sqrt(a));
    let sqrtB=Math.floor(Math.sqrt(b));
    
    return (sqrtB-sqrtA)+1;

}

  • spriyamalar
     + 0 comments
    public static int squares(int start, int end) {
    int startVal = (int)Math.sqrt(start);
    int endVal = (int)Math.sqrt(end);
    int sqrtcount = 0;
    sqrtcount = (int)IntStream.rangeClosed(startVal, endVal).
    filter(a -> {
        int srt = a*a;
        return srt >= start && srt <=end;
    }).count();
    return sqrtcount;
}

  • yashdeora98294
     + 0 comments

    Here is problem solution in Python, Java, C++, C and Javascript - https://programmingoneonone.com/hackerrank-sherlock-and-squares-problem-solution.html

  • robertbielicki
     + 0 comments

    SOLUTION IN RUST:

    fn squares(a: i32, b: i32) -> i32 {
    let c = (a as f64).sqrt().ceil() as i32;
    let f = (b as f64).sqrt().floor() as i32;

    (c..=f).count() as i32
}

  • alban_tyrex
     + 0 comments

    Here are my c++ solutions, you can watch the explanation here : https://youtu.be/LtU0ItsvbMI

    Solution 1 O(√n)

    int squares(int a, int b) {
    int i = ceil(sqrt(a)), result = 0;
    for(; i * i <= b; i++) result++;
    return result;
}

    Solution 2 O(1)

    int squares(int a, int b) {
    int i = ceil(sqrt(a)), j = floor(sqrt(b));
    return j - i + 1;
}