标签:form otto ott nat div tom cannot exp repr
In a row of dominoes, A[i] and B[i] represent the top and bottom halves of the i-th domino. (A domino is a tile with two numbers from 1 to 6 - one on each half of the tile.) We may rotate the i-th domino, so that A[i] and B[i] swap values. Return the minimum number of rotations so that all the values in A are the same, or all the values in B are the same. If it cannot be done, return -1. Example 1: Input: A = [2,1,2,4,2,2], B = [5,2,6,2,3,2] Output: 2 Explanation: The first figure represents the dominoes as given by A and B: before we do any rotations. If we rotate the second and fourth dominoes, we can make every value in the top row equal to 2, as indicated by the second figure. Example 2: Input: A = [3,5,1,2,3], B = [3,6,3,3,4] Output: -1 Explanation: In this case, it is not possible to rotate the dominoes to make one row of values equal. Note: 1 <= A[i], B[i] <= 6 2 <= A.length == B.length <= 20000
1. The final uniform character should be either A[0] or B[0]
2. A[0] could be at the top, or the bottom. Same applies to B[0]
3. If A[0] works, no need to check B[0]; Because if both A[0] and B[0] exist in all dominoes, the result should be the same.
1 class Solution { 2 public int minDominoRotations(int[] A, int[] B) { 3 if (A.length < 1 || B.length < 1 || A.length != B.length) return -1; 4 int n = A.length; 5 for (int i = 0, a = 0, b = 0; i < n && (A[0] == A[i] || A[0] == B[i]); i ++) { 6 if (A[i] != A[0]) a ++; // a stands for try to put A[0] at top 7 if (B[i] != A[0]) b ++; // b stands for try to put A[0] at bottom 8 if (i == n - 1) return Math.min(a, b); 9 } 10 11 for (int i = 0, a = 0, b = 0; i < n && (B[0] == A[i] || B[0] == B[i]); i ++) { 12 if (A[i] != B[0]) a ++; 13 if (B[i] != B[0]) b ++; 14 if (i == n - 1) return Math.min(a, b); 15 } 16 return -1; 17 } 18 }
Leetcode: Minimum Domino Rotations For Equal Row
标签:form otto ott nat div tom cannot exp repr
原文地址:https://www.cnblogs.com/EdwardLiu/p/11615274.html