题目:
There are N children standing in a line. Each child is assigned a rating value.
You are giving candies to these children subjected to the following requirements:
- Each child must have at least one candy.
- Children with a higher rating get more candies than their neighbors.
What is the minimum candies you must give?
解题思路:
遍历两遍数组即可
第一遍:如果当前元素比前一个大,则当前小孩获得的糖果数为前一个小孩糖果数+1,否则糖果数为1
第二遍:从后往前扫描,如果当前元素i的值大于i+1位置的值,则比较两者目前的糖果数,如果i小孩获得的糖果数大于第i+1个小孩获得糖果数+1,则不变,否则,将i小孩糖果数置为第i+1个小孩糖果数+1.
实现代码:
#include <iostream> #include <vector> using namespace std; class Solution { public: int candy(vector<int> &ratings) { int len = ratings.size(); if(len == 0 || len == 1) return len; int *c = new int[len]; c[0] = 1; for(int i = 1; i < len; i++) if(ratings[i] > ratings[i-1]) c[i] = c[i-1] + 1; else c[i] = 1; int minCandy = c[len-1]; for(int i = len-2; i >= 0; i--) { if(ratings[i] > ratings[i+1]) c[i] = max(c[i], c[i+1] + 1); minCandy += c[i]; } return minCandy; } }; int main(void) { int ratings[] = {5,8,2,4,9,5,4}; int len = sizeof(ratings) / sizeof(ratings[0]); vector<int> ratVec(ratings, ratings+len); Solution solution; int ret = solution.candy(ratVec); cout<<ret<<endl; return 0; }