788. Rotated Digits

X is a good number if after rotating each digit individually by 180 degrees, we get a valid number that is different from X. Each digit must be rotated - we cannot choose to leave it alone.

A number is valid if each digit remains a digit after rotation. 0, 1, and 8 rotate to themselves; 2 and 5 rotate to each other; 6 and 9 rotate to each other, and the rest of the numbers do not rotate to any other number and become invalid.

Now given a positive number N, how many numbers X from 1 to N are good?

Example:
Input: 10
Output: 4
Explanation:
There are four good numbers in the range [1, 10] : 2, 5, 6, 9.
Note that 1 and 10 are not good numbers, since they remain unchanged after rotating.
Note:

N will be in range [1, 10000].

C++:

class Solution {
public:
       int rotatedDigits(int N) {
           int f[] = {1, 1, 2, 0, 0, 2, 2, 0, 1, 2}; 
           int res = 0;
           for (int i = 1; i <= N; i++) {
               int p = i;
               int s = 1;
               while (p) {
                     s *= f[p % 10];
                     p /= 10;
               }    
               if (s >= 2) res += 1;
           }   
           return res;
       }      
}; 

Python:

class Solution(object):
    def rotatedDigits(self, N):
        s1 = set([1, 8, 0])
        s2 = set([1, 8, 0, 6, 9, 2, 5])
        def isGood(x):
            s = set([int(i) for i in str(x)])
            return s.issubset(s2) and not s.issubset(s1)
        return sum([isGood(i) for i in range(N + 1)])

Java:

package com.pku.leetcode.study;

public class Solution788 {
    public int rotatedDigits(int N) {
        int[] dp = new int[N + 1];
        int count = 0;

        for (int i = 0; i <= N; i++) {
            if (i < 10) {
                if (i == 0 || i == 1 || i == 8) {
                    dp[i] = 1;
                } else if (i == 2 || i == 5 || i == 6 || i == 9) {
                    dp[i] = 2;
                    count++;
                }
            } else {
                int a = dp[i / 10], b = dp[i % 10];
                if (a == 1 && b == 1) {
                    dp[i] = 1;
                } else if (a >= 1 && b >= 1) {
                    dp[i] = 2;
                    count++;
                }
            }
        }

        return count;
    }
}

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