hdu 5233 Gunner II (bc #42 B) (离散化)
Gunner II
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/65536 K (Java/Others)
Total Submission(s): 1433 Accepted Submission(s): 540
Problem Description
Long long ago, there was a gunner whose name is Jack. He likes to go hunting very much. One day he go to the grove. There are n birds and n trees. The i-th bird stands on the top of the i-th tree. The trees stand in straight line from left to the right. Every tree has its height. Jack stands on the left side of the left most tree. When Jack shots a bullet in height H to the right, the nearest bird which stands in the tree with height H will falls.
Jack will shot many times, he wants to know which bird will fall during each shot.
Jack will shot many times, he wants to know which bird will fall during each shot.
Input
There are multiple test cases (about 5), every case gives n, m in the first line, n indicates there are n trees and n birds, m means Jack will shot m times.
In the second line, there are n numbers h[1],h[2],h[3],…,h[n] which describes the height of the trees.
In the third line, there are m numbers q[1],q[2],q[3],…,q[m] which describes the height of the Jack’s shots.
Please process to the end of file.
[Technical Specification]
All input items are integers.
1<=n,m<=100000(10^5)
1<=h[i],q[i]<=1000000000(10^9)
In the second line, there are n numbers h[1],h[2],h[3],…,h[n] which describes the height of the trees.
In the third line, there are m numbers q[1],q[2],q[3],…,q[m] which describes the height of the Jack’s shots.
Please process to the end of file.
[Technical Specification]
All input items are integers.
1<=n,m<=100000(10^5)
1<=h[i],q[i]<=1000000000(10^9)
Output
For each q[i], output an integer in a single line indicates the id of bird Jack shots down. If Jack can’t shot any bird, just output -1.
The id starts from 1.
The id starts from 1.
Sample Input
5 5
1 2 3 4 1
1 3 1 4 2
Sample Output
1
3
5
4
2
Hint
Huge input, fast IO is recommended.
Source
因为一共才1E5的数据,而高度有1E9
所以考虑离散化
关于离散化的内容,这篇博客讲得很好。
http://blog.csdn.net/axuan_k/article/details/45954561
我是使用了第三种map+set的方法。。。
离散化大概是因为数据太大下表存不下。。。
然后map的key 值没有范围?所以实现了离散化(是这样嘛???)
/************************************************************************* > File Name: code/bc/#42/B.cpp > Author: 111qqz > Email: rkz2013@126.com > Created Time: 2015年08月01日 星期六 02时47分54秒 ************************************************************************/ #include<iostream> #include<iomanip> #include<cstdio> #include<algorithm> #include<cmath> #include<cstring> #include<string> #include<map> #include<set> #include<queue> #include<vector> #include<stack> #define y0 abc111qqz #define y1 hust111qqz #define yn hez111qqz #define j1 cute111qqz #define tm crazy111qqz #define lr dying111qqz using namespace std; #define REP(i, n) for (int i=0;i<int(n);++i) typedef long long LL; typedef unsigned long long ULL; const int inf = 0x7fffffff; const int N=2E5+7; int n,m; map<int,int>mp; set<int>se[N]; int main() { while (scanf("%d %d",&n,&m)!=EOF) { for ( int i = 1 ; i <= n ; i++ ) se[i].clear(); mp.clear(); int t = 0; int x; for ( int i = 1 ; i <= n ; i++ ) { scanf("%d",&x); if (!mp[x]) mp[x]=++t; se[mp[x]].insert(i); } for ( int i = 1 ; i <= m ; i++) { scanf("%d",&x); if (se[mp[x]].size()==0) { puts("-1"); } else { printf("%d\n",*se[mp[x]].begin()); se[mp[x]].erase(se[mp[x]].begin()); } } } return 0; }
还有一种写法,貌似要快一点,但是空间用的多一些:
/************************************************************************* > File Name: code/bc/#42/BB.cpp > Author: 111qqz > Email: rkz2013@126.com > Created Time: 2015年08月01日 星期六 09时30分45秒 ************************************************************************/ #include<iostream> #include<iomanip> #include<cstdio> #include<algorithm> #include<cmath> #include<cstring> #include<string> #include<map> #include<set> #include<queue> #include<vector> #include<stack> #define y0 abc111qqz #define y1 hust111qqz #define yn hez111qqz #define j1 cute111qqz #define tm crazy111qqz #define lr dying111qqz using namespace std; #define REP(i, n) for (int i=0;i<int(n);++i) typedef long long LL; typedef unsigned long long ULL; const int inf = 0x7fffffff; map<int,set<int> >mp; int m,n; int main() { while (scanf("%d %d",&n,&m)!=EOF) { mp.clear(); for ( int i = 1; i <= n ; i++ ) { int tmpx; scanf("%d",&tmpx); mp[tmpx].insert(i); } for ( int i = 1 ; i <= m ; i++ ) { int q; scanf("%d",&q); if (mp[q].size()==0) { puts("-1"); } else { printf("%d\n",*mp[q].begin()); mp[q].erase(mp[q].begin()); } } } return 0; }
