★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★
➤微信公众号:山青咏芝(shanqingyongzhi)
➤博客园地址:山青咏芝(https://www.cnblogs.com/strengthen/)
➤GitHub地址:https://github.com/strengthen/LeetCode
➤原文地址:https://www.cnblogs.com/strengthen/p/9865478.html
➤如果链接不是山青咏芝的博客园地址,则可能是爬取作者的文章。
➤原文已修改更新!强烈建议点击原文地址阅读!支持作者!支持原创!
★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★★
For some fixed N, an array A is beautiful if it is a permutation of the integers 1, 2, ..., N, such that:
For every i < j, there is no k with i < k < j such that A[k] * 2 = A[i] + A[j].
Given N, return any beautiful array A. (It is guaranteed that one exists.)
Example 1:
Input: 4
Output: [2,1,4,3]
Example 2:
Input: 5
Output: [3,1,2,5,4]
Note:
1 <= N <= 1000
对于某些固定的 N,如果数组 A 是整数 1, 2, ..., N 组成的排列,使得:
对于每个 i < j,都不存在 k 满足 i < k < j 使得 A[k] * 2 = A[i] + A[j]。
那么数组 A 是漂亮数组。
给定 N,返回任意漂亮数组 A(保证存在一个)。
示例 1:
输入:4 输出:[2,1,4,3]
示例 2:
输入:5 输出:[3,1,2,5,4]
提示:
1 <= N <= 1000
16ms
1 class Solution { 2 func beautifulArray(_ N: Int) -> [Int] { 3 var a:[Int] = [Int](repeating: 0,count: N) 4 dfs(1, 0, N, &a,0) 5 for i in 0..<N 6 { 7 a[i] += 1 8 } 9 return a 10 } 11 //深度优先搜索。DFS即Depth First Search. 12 //对每一个可能的分支路径深入到不能再深入为止,而且每个节点只能访问一次 13 func dfs(_ d:Int,_ m:Int,_ n: Int,_ a:inout [Int],_ off:Int) -> Int 14 { 15 var off = off 16 if m >= n {return off} 17 if m + d >= n 18 { 19 a[off] = m 20 off += 1 21 return off 22 } 23 for i in 0..<2 24 { 25 off = dfs(d*2, m+d*i, n, &a, off) 26 } 27 return off 28 } 29 }
16ms
1 class Solution { 2 func beautifulArray(_ N: Int) -> [Int] { 3 var res: [Int] = [] 4 res.append(1) 5 while res.count < N { 6 var temp: [Int] = [] 7 for i in res { 8 if i * 2 - 1 <= N { 9 temp.append(i * 2 - 1) 10 } 11 } 12 for i in res { 13 if i * 2 <= N { 14 temp.append(i * 2) 15 } 16 } 17 res = temp 18 } 19 return res 20 } 21 }