题目描述:
/*纯手打题面*/
Avin is observing the cars at a crossroads.He finds that there are n cars running in the east-west direction with the i-th car passing the intersection at time a[i].There are another m cars running in the north-south direction with the i-th car passing the intersection at time b[i].If two cars passing the intersections at the same time,a traffic crash occurs.In order to achieve world peace and harmony,all the cars running in the north-south direction wait the same time amount of integral time so that no two cars bump.You are asked the
minimum waiting time.
/*纯手打题面*/
Input
n m a[i] b[i] (1<=n,m<=1000;1<=ai,bi<=1000)
Output
The minimum waiting time(integer).
题解心得:
啊啊啊啊啊啊啊啊啊啊啊啊,当时在比赛的时候翻了好久词典,终于把这个题目的意思大概搞懂了
然后和我们队的大佬讨论了好久
一开始爆搜O(N3)
然后想了好久奇奇怪怪的方法,分治什么的,然后就剪枝优化。
但是最后用标记法把时间复杂度压到了O(N2)。
大致思路:
枚举时间(一个循环)
在每个循环里标记a[i]所占的时间点(布尔数组c)
同时标记b[i]+t的时间点(布尔数组d)
接着c&&d;
就可以了。
这题真的水,不加剪枝也能AC。
代码:
以后附。