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

Sherlock and Squares

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1584 Discussions

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  • Seth_Nagelberg
     + 0 comments

    Case 6 was 'failing' because of a print statement used for debugging... Success after removing print statement (which should have no effect on result)

  • debmary
     + 0 comments

    My JavaScript Solution function squares(a, b) { const start = Math.ceil(Math.sqrt(a)); const end = Math.floor(Math.sqrt(b));
    return end - start + 1 > 0 ? end - start + 1 : 0; }

  • anarod_val25
     + 0 comments

    c++

    int squares(int a, int b) {
    int start = ceil(sqrt(static_cast<double>(a)));
    int end = floor(sqrt(static_cast<double>(b)));
    
    if (end < start) return 0;
    
    return end - start + 1;
}

  • megan_fernandes1
     + 0 comments

    Javascript simple solution: function squares(a, b) { const lower = Math.ceil(Math.sqrt(a)) const upper = Math.floor(Math.sqrt(b)) return upper-lower+1

    }

  • bojan_milojkovi3
     + 0 comments

    Java solution :

    public static int squares(int a, int b) {
    int startVal = (int)Math.sqrt(a);
    int endVal = (int)Math.sqrt(b);
    int sqrtcount = 0;

    for(int i=startVal ; i<=endVal ; i++) {
        int square = i*i;
        if(square>=a && square<=b) {
            sqrtcount++;
        }
    }

    return sqrtcount;
}