[Swift]LeetCode1215. 步进数 | Stepping Numbers

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Stepping Number is an integer such that all of its adjacent digits have an absolute difference of exactly 1. For example, 321 is a Stepping Number while 421 is not.

Given two integers low and high, find and return a sorted list of all the Stepping Numbers in the range [low, high] inclusive.

 

Example 1:

Input: low = 0, high = 21
Output: [0,1,2,3,4,5,6,7,8,9,10,12,21]

 

Constraints:

  • 0 <= low <= high <= 2 * 10^9

如果一个整数上的每一位数字与其相邻位上的数字的绝对差都是 1,那么这个数就是一个「步进数」。

例如,321 是一个步进数,而 421 不是。

给你两个整数,low 和 high,请你找出在 [low, high] 范围内的所有步进数,并返回 排序后 的结果。

 

示例:

输入:low = 0, high = 21
输出:[0,1,2,3,4,5,6,7,8,9,10,12,21]

 

提示:

  • 0 <= low <= high <= 2 * 10^9

Runtime: 152 ms
Memory Usage: 22.3 MB
 1 class Solution {
 2     var L:Int = 0
 3     var S:[Int] = [Int]()
 4     
 5     func countSteppingNumbers(_ low: Int, _ high: Int) -> [Int] {
 6         self.L = high
 7         var ans:[Int] = [Int]()
 8         for i in 1...9
 9         {
10             search(i)
11         }
12         if 0 >= low && 0 <= high
13         {
14             ans.append(0)
15         }
16         for i in S
17         {
18             if i >= low && i <= high
19             {
20                 ans.append(i)
21             }
22         }
23         ans.sort()
24         return ans
25     }
26     
27     func search(_ x:Int)
28     {
29         if x > L{return}
30         S.append(x)
31         let last:Int = x % 10
32         if last != 0
33         {
34             search(x * 10 + last - 1)
35         }
36         if last != 9
37         {
38             search(x * 10 + last + 1)
39         }
40     }  
41 }

 

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