• LeetCode 1088. Confusing Number II


    原题链接在这里:https://leetcode.com/problems/confusing-number-ii/

    题目:

    We can rotate digits by 180 degrees to form new digits. When 0, 1, 6, 8, 9 are rotated 180 degrees, they become 0, 1, 9, 8, 6 respectively. When 2, 3, 4, 5 and 7 are rotated 180 degrees, they become invalid.

    confusing number is a number that when rotated 180 degrees becomes a different number with each digit valid.(Note that the rotated number can be greater than the original number.)

    Given a positive integer N, return the number of confusing numbers between 1 and N inclusive.

    Example 1:

    Input: 20
    Output: 6
    Explanation: 
    The confusing numbers are [6,9,10,16,18,19].
    6 converts to 9.
    9 converts to 6.
    10 converts to 01 which is just 1.
    16 converts to 91.
    18 converts to 81.
    19 converts to 61.
    

    Example 2:

    Input: 100
    Output: 19
    Explanation: 
    The confusing numbers are [6,9,10,16,18,19,60,61,66,68,80,81,86,89,90,91,98,99,100].

    Note:

    1. 1 <= N <= 10^9

    题解:

    Create num and its rotation on the run with 0, 1, 6, 8, 9. If the number != rotation, count++.

    num = num * 10 + d.

    rotation = hm.get(d) *base + ratation.

    base *= 10.

    Time Complexity: exponential.

    Space: O(N). stack space.

    AC Java:

     1 class Solution {
     2     int limit;
     3     int [] nums = new int[]{0, 1, 6, 8, 9};
     4     int count = 0;
     5     
     6     public int confusingNumberII(int N) {
     7         limit = N;
     8         
     9         HashMap<Integer, Integer> hm = new HashMap<Integer, Integer>();
    10         hm.put(0, 0);
    11         hm.put(1, 1);
    12         hm.put(6, 9);
    13         hm.put(8, 8);
    14         hm.put(9, 6);
    15         
    16         dfs(0, 0, 1, hm); 
    17         return count;
    18     }
    19     
    20     private void dfs(long num, long reNum, long base, HashMap<Integer, Integer> hm){
    21         if(num > limit){
    22             return;
    23         }
    24         
    25         if(num != reNum){
    26             count++;
    27         }
    28         
    29         for(int d : nums){
    30             if(num == 0 && d == 0){
    31                 continue;
    32             }
    33             
    34             dfs(num * 10 + d, hm.get(d) * base + reNum, base * 10, hm);
    35         }
    36     }
    37 }

    类似Confusing NumberStrobogrammatic Number III.

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  • 原文地址:https://www.cnblogs.com/Dylan-Java-NYC/p/12382526.html
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