• 【leetcode】969. Pancake Sorting


    题目如下:

    Given an array A, we can perform a pancake flip: We choose some positive integer k <= A.length, then reverse the order of the first k elements of A.  We want to perform zero or more pancake flips (doing them one after another in succession) to sort the array A.

    Return the k-values corresponding to a sequence of pancake flips that sort A.  Any valid answer that sorts the array within 10 * A.length flips will be judged as correct.

    Example 1:

    Input: [3,2,4,1]
    Output: [4,2,4,3]
    Explanation: 
    We perform 4 pancake flips, with k values 4, 2, 4, and 3.
    Starting state: A = [3, 2, 4, 1]
    After 1st flip (k=4): A = [1, 4, 2, 3]
    After 2nd flip (k=2): A = [4, 1, 2, 3]
    After 3rd flip (k=4): A = [3, 2, 1, 4]
    After 4th flip (k=3): A = [1, 2, 3, 4], which is sorted. 
    

    Example 2:

    Input: [1,2,3]
    Output: []
    Explanation: The input is already sorted, so there is no need to flip anything.
    Note that other answers, such as [3, 3], would also be accepted.
    

    Note:

    1. 1 <= A.length <= 100
    2. A[i] is a permutation of [1, 2, ..., A.length]

    解题思路:本题没有要求求出最少的操作次数,而且规定了操作上限是 10 * A.length。我的方法是首先把最大的数移到最后,这里只需要两步,第一是找出最大的数的位置,并且把这一段反转,这样的话最大数就在第一位了,接下来逆转整个数组,最大数就被翻转到最后。接下来是次大数,方法也一样,只不过在操作的过程中不处理数组最后一个元素(即已经放好位置的最大数)。这种方法理论上的最大操作次数是 2 * A.length。

    代码如下:

    class Solution(object):
        def pancakeSort(self, A):
            """
            :type A: List[int]
            :rtype: List[int]
            """
            bound = len(A)
            sa = sorted(A)
            end = len(A)
            res = []
            while A != sa:
                inx = A.index(bound)
                if inx != 0:
                    A = A[0:inx+1][::-1] + A[inx+1:]
                    res.append(inx+1)
                A = A[:end][::-1] + A[end:]
                res.append(end)
                end -= 1
                bound -= 1
            return res
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  • 原文地址:https://www.cnblogs.com/seyjs/p/10233848.html
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