题解 | #最小花费爬楼梯#
最小花费爬楼梯
https://www.nowcoder.com/practice/6fe0302a058a4e4a834ee44af88435c7?tpId=295&tqId=2366451&ru=%2Fpractice%2F8c82a5b80378478f9484d87d1c5f12a4&qru=%2Fta%2Fformat-top101%2Fquestion-ranking&sourceUrl=%2Fexam%2Foj%3Fpage%3D1%26tab%3D%25E7%25AE%2597%25E6%25B3%2595%25E7%25AF%2587%26topicId%3D295
跳台阶的变种,加入了代价,需要计算最优
class Solution {
public:
/**
* 代码中的类名、方法名、参数名已经指定,请勿修改,直接返回方法规定的值即可
*
*
* @param cost int整型vector
* @return int整型
*/
int minCostClimbingStairs(vector<int>& cost) {
// dp[i] 表示在该台阶之前的最小花费
std::vector<int> dp(cost.size() + 1, 0);
dp[0] = dp[1] = 0;
// 当前台阶,可由前一级台阶跳一步,或者前两级台阶跳两步两种情况组成,取最小代价
for (int i = 2; i <= cost.size(); ++i) {
dp[i] = std::min(dp[i - 1] + cost[i - 1], dp[i - 2] + cost[i - 2]);
}
return dp[cost.size()];
}
};
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