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There are a row of n houses, each house can be painted with one of the three colors: red, blue or green. The cost of painting each house with a certain color is different. You have to paint all the houses such that no two adjacent houses have the same color.
The cost of painting each house with a certain color is represented by a n x 3
cost matrix. For example, costs[0][0]
is the cost of painting house 0 with color red; costs[1][2]
is the cost of painting house 1 with color green, and so on... Find the minimum cost to paint all houses.
Note:
All costs are positive integers.
1 class Solution { 2 public: 3 int minCost(vector<vector<int>>& costs) { 4 if (costs.empty()) return 0; 5 for (int i = 1; i < costs.size(); ++i) { 6 for (int j = 0; j < 3; ++j) { 7 costs[i][j] += min(costs[i-1][(j+1)%3], costs[i-1][(j+2)%3]); 8 } 9 } 10 return min(costs.back()[0], min(costs.back()[1], costs.back()[2])); 11 } 12 };
There are a row of n houses, each house can be painted with one of the k colors. The cost of painting each house with a certain color is different. You have to paint all the houses such that no two adjacent houses have the same color.
The cost of painting each house with a certain color is represented by a n x k
cost matrix. For example, costs[0][0]
is the cost of painting house 0 with color 0; costs[1][2]
is the cost of painting house 1 with color 2, and so on... Find the minimum cost to paint all houses.
Note:
All costs are positive integers.
Follow up:
Could you solve it in O(nk) runtime?
1 class Solution { 2 public: 3 int minCostII(vector<vector<int>>& costs) { 4 if (costs.empty() || costs[0].empty()) return 0; 5 int n = costs.size(), k = costs[0].size(); 6 vector<int> min1(k), min2(k); 7 for (int i = 1; i < costs.size(); ++i) { 8 min1[0] = INT_MAX; 9 for (int j = 1; j < k; ++j) { 10 min1[j] = min(min1[j-1], costs[i-1][j-1]); 11 } 12 min2[k-1] = INT_MAX; 13 for (int j = k - 2; j >= 0; --j) { 14 min2[j] = min(min2[j+1], costs[i-1][j+1]); 15 } 16 for (int j = 0; j < k; ++j) { 17 costs[i][j] += min(min1[j], min2[j]); 18 } 19 } 20 int res = INT_MAX; 21 for (auto c : costs.back()) { 22 res = min(res, c); 23 } 24 return res; 25 } 26 };
快速找到数组中去掉某个元素的最小值方法:定义两个数组,min1[i]与min2[i]分别记录从左向右到第i位与从右向左到第i位的区间最小值,那么去掉第i位的最小值就是min(min1[i], min2[i])。
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原文地址:http://www.cnblogs.com/easonliu/p/4784858.html