NYOJ-522 Interval

Interval

时间限制： 2000 ms  |  内存限制： 65535 KB

难度： 4

 

描述

There are n(1 <= n <= 100000) intervals [ai, bi] and m(1 <= m <= 100000) queries, -100000 <= ai <= bi <= 100000 are integers.

Each query contains an integer xi(-100000 <= x <= 100000). For each query, you should answer how many intervals convers xi.

 

输入

The first line of input is the number of test case.
For each test case,
two integers n m on the first line, 
then n lines, each line contains two integers ai, bi;
then m lines, each line contains an integer xi.

输出

m lines, each line an integer, the number of intervals that covers xi.

样例输入

2
3 4
1 3
1 2
2 3
0
1
2
3
1 3
0 0
-1
0
1

样例输出

0
2
3
2
0
1
0

      很久没写树状数组了，正好看到了，就复习一下， 本题是树状数组-----插线问点的问题

注意写树状数组时候把区间都扩大到大于0的区间上，不能等于0.否则会一直超时，代码如下：

 

 1 #include <cstdio>
 2 #include <cstring>
 3 #include <iostream>
 4 
 5 using namespace std;
 6 
 7 int num[200005];
 8 
 9 int lowbit(int i)
10 {
11     return i & (-i);
12 }
13 
14 void update(int i, int add)
15 {
16     while(i <= 200001)
17     {
18         num[i] += add;
19         i += lowbit(i);
20     }
21 }
22 
23 int getsum(int x)
24 {
25     int ans = 0;
26     while(x > 0)
27     {
28         ans += num[x];
29         x -= lowbit(x);
30     }
31     return ans;
32 }
33 
34 int main()
35 {
36     int T, m, n, s, t, x;
37     scanf("%d", &T);
38     while(T--)
39     {
40         memset(num, 0, sizeof(num));
41         scanf("%d%d", &m, &n);
42         while(m--)
43         {
44             scanf("%d%d", &s, &t);
45             update(s+100001, 1);
46             update(t+100001+1, -1);
47         }
48         while(n--)
49         {
50             scanf("%d", &x);
51             printf("%d\n", getsum(x+100001));
52         }
53     }
54     return 0;
55 }