LeetCode 495. Teemo Attacking(medium)

Posted 皇家大鹏鹏

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In LOL world, there is a hero called Teemo and his attacking can make his enemy Ashe be in poisoned condition. Now, given the Teemo‘s attacking ascending time series towards Ashe and the poisoning time duration per Teemo‘s attacking, you need to output the total time that Ashe is in poisoned condition.

You may assume that Teemo attacks at the very beginning of a specific time point, and makes Ashe be in poisoned condition immediately.

Example 1:

Input: [1,4], 2
Output: 4
Explanation: At time point 1, Teemo starts attacking Ashe and makes Ashe be poisoned immediately. 
This poisoned status will last 2 seconds until the end of time point 2.
And at time point 4, Teemo attacks Ashe again, and causes Ashe to be in poisoned status for another 2 seconds.
So you finally need to output 4.

 

Example 2:

Input: [1,2], 2
Output: 3
Explanation: At time point 1, Teemo starts attacking Ashe and makes Ashe be poisoned. 
This poisoned status will last 2 seconds until the end of time point 2.
However, at the beginning of time point 2, Teemo attacks Ashe again who is already in poisoned status.
Since the poisoned status won‘t add up together, though the second poisoning attack will still work at time point 2, it will stop at the end of time point 3.
So you finally need to output 3.

 

Note:

  1. You may assume the length of given time series array won‘t exceed 10000.
  2. You may assume the numbers in the Teemo‘s attacking time series and his poisoning time duration per attacking are non-negative integers, which won‘t exceed 10,000,000.

很有意思的一道题目,从LOL游戏中抽象出来,题目的意思是求若干段序列累计的长度,重叠部分只计算一次,直接求解很麻烦,但是如果翻过脸求解,总最大的长度中减去相邻两段的间隔长度,最后会简单很多

代码如下:

 1 class Solution {
 2 public:
 3     int findPoisonedDuration(vector<int>& timeSeries, int duration) {
 4         //参考了答案中大神的解法
 5         //题目的意思是求若干段序列累计的长度,重叠部分只计算一次
 6         //直接去阶段很麻烦,但是如果用最大的长度减去减去相邻序列的间隔,最后结果会简单很多。
 7         if (timeSeries.empty())
 8             return 0;
 9         int res = timeSeries.back() + duration - timeSeries[0];
10         for (int i = 1; i < timeSeries.size(); i++)
11             res -= max(0, timeSeries[i] - (timeSeries[i - 1] + duration));
12         return res;
13     }
14 };

 









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