• Project Euler 44: Find the smallest pair of pentagonal numbers whose sum and difference is pentagonal.


    In Problem 42 we dealt with triangular problems, in Problem 44 of Project Euler we deal with pentagonal number, I can only wonder if we have to deal with septagonal numbers in Problem 46. Anyway the problem reads

    Pentagonal numbers are generated by the formula, Pn=n(3n-1)/2. The first ten pentagonal numbers are:

    1, 5, 12, 22, 35, 51, 70, 92, 117, 145, …

    It can be seen that P4 + P7 = 22 + 70 = 92 = P8. However, their difference, 70 – 22 = 48, is not pentagonal.

    Find the pair of pentagonal numbers, Pj and Pk, for which their sum and difference is pentagonal and D = |Pk – Pj| is minimised; what is the value of D?

    I have found a solution which I will present to you in just a few lines, but I must admit that I haven’t been able to justify why it is the right solution it gives us. The solution I have made just finds a solution to the problem which happens to the right solution.

    I did not want to generate a list of pentagonal numbers, so I wanted to make a small function which checks if a given number is pentagonal by checking if the inverse function yields an integer, just like in the solution to  Problem 42. We could rather easily calculate the inverse function as we did with the inverse function for triangular numbers, or we can cheat and peak at the pentagonal number entry at Wikipedia.

    The inverse function is

    displaystyle n = frac{sqrt{24x  1}  1}{6}

    That enables us to make a C# function that checks if a number is pentagonal

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    private bool isPentagonal(int number) {
        double penTest = (Math.Sqrt(1 + 24 * number) + 1.0) / 6.0;
        return penTest == ((int)penTest);
    }

    Once we have this crucial function we can make two nested loops to check pentagonal numbers until we find two where the sum and difference are pentagonal as well. I am frustrated since I can’t figure out why this one is the first. I can prove that it is indeed minimal by testing other numbers until the difference of two numbers reach the result of this problem. However I haven’t done that.

    The outer loop of the algorithm counts upwards generating and the inner loop counting downwards testing all pentagonal numbers less than the one generated by the outer loop. The code looks like

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    int result = 0;
    bool notFound = true;
    int i = 1;
     
    while (notFound) {
        i++;
        int n = i * (3 * i - 1) / 2;
     
        for (int j = i-1; j > 0; j--) {
            int m = j * (3 * j - 1) / 2;
            if (isPentagonal(n - m) && isPentagonal(n + m)) {
                result = n-m;
                notFound = false;
                break;
            }
        }
    }

    and gives the result

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    k = 2167, j = 1020
    The value of D is 5482660
    Solution took 35 ms

    Wrapping up

    I can see that many other people also can’t give the definitive answer to why the result is correct. If you understand the problem better than I do, please let me know exactly why I find the right solution.

    You can as usual find the source code for the problem here.

    ref

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  • 原文地址:https://www.cnblogs.com/forcheryl/p/4899714.html
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