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  1. Prepare
  2. Algorithms
  3. Constructive Algorithms
  4. New Year Chaos
  5. Discussions

New Year Chaos

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1931 Discussions

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  • skolios
     + 0 comments

    This is the solution for Java

        public static void minimumBribes(List<Integer> q) {
        int n = q.size();
        int bribes = 0;

        for(int i = n; i >= 1; i--) {
            // quick exit if number is in the right place
            if (q.get(i - 1) == i) {
                continue;
            }

            // case where expected element is only one
            // places ahead
            if(q.get(i - 2) == i) {
                bribes++;
                Collections.swap(q, i-1, i-2);
            }

            // case where expected element has moved two
            // places away
            if(q.get(i - 3) == (i)) {
                bribes += 2;
                Collections.rotate(q.subList(i - 3, i), -1);
            }

            // case where expected element has moved ahead
            // further places
            else {
                System.out.println("Too chaotic");
                return;
            }
        }
        System.out.printf("%d\n",bribes);
    }
        }
        System.out.printf("%d\n",bribes);
    }

  • air_mvp_jordan
     + 0 comments

    Solution for c#

    public static void minimumBribes(List<int> q)
{
	int totalBribes = 0;

	for (int i = q.Count - 1; i >= 0; i--)
	{
		// if the current person moves than 2 spots
		if (q[i] - (i + 1) > 2)
		{
			Console.WriteLine("Too chaotic");
			return;
		}

		// Sum up the bribes
		for (int j = Math.Max(0, q[i] - 2); j < i; j++)
		{
			if (q[j] > q[i])
			{
					totalBribes++;
			}
		}
	}
	Console.WriteLine(totalBribes);
}

  • air_mvp_jordan
     + 0 comments

    Solution for c#

    public static void minimumBribes(List<int> q)
{
	int totalBribes = 0;

	for (int i = q.Count - 1; i >= 0; i--)
	{
			// if the current person moves than 2 spots
			if (q[i] - (i + 1) > 2)
			{
					Console.WriteLine("Too chaotic");
					return;
			}

			// Sum up the bribes
			for (int j = Math.Max(0, q[i] - 2); j < i; j++)
			{
					if (q[j] > q[i])
					{
							totalBribes++;
					}
			}
	}
	Console.WriteLine(totalBribes);
}

  • gokul_surapured1
     + 0 comments

    I have same question.

    But when i try to check manually this is what i found: 12345678 - original 12354678 - bribe 1 12534678 - bribe 2 12534768 - bribe 3 12537468 - bribe 4 12537486 - bribe 5 12537846 - bribe 6 12537864 - bribe 7

  • torres_soldado
     + 0 comments

    There is one thing I don't understand, can a biber be bribed? for instance * 1 2 3 4 5 * 2 1 3 4 5 * 1 2 3 4 5