13年山东省赛 Mountain Subsequences(dp)

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Mountain Subsequences

Time Limit: 1 Sec  Memory Limit: 128 MB

Description

Coco is a beautiful ACMer girl living in a very beautiful mountain. There are many trees and flowers on the mountain, and there are many animals and birds also. Coco like the mountain so much that she now name some letter sequences as Mountain Subsequences.

 

A Mountain Subsequence is defined as following:

1. If the length of the subsequence is n, there should be a max value letter, and the subsequence should like this, a1 < ...< ai < ai+1 < Amax > aj > aj+1 > ... > an

2. It should have at least 3 elements, and in the left of the max value letter there should have at least one element, the same as in the right.

3. The value of the letter is the ASCII value.

 

Given a letter sequence, Coco wants to know how many Mountain Subsequences exist.

 

 

Input

Input contains multiple test cases.

For each case there is a number n (1<= n <= 100000) which means the length of the letter sequence in the first line, and the next line contains the letter sequence.

Please note that the letter sequence only contain lowercase letters. 

 

Output

For each case please output the number of the mountain subsequences module 2012.

 

Sample Input

4
abca

Sample Output

4

HINT

 

 The 4 mountain subsequences are:


aba, aca, bca, abca

 

题意:满足a[i]<a[i+1]<......<a[j]>a[j+1]>......a[k]的子序列有多少个(左边和右边的长度都至少为1)

分析:算出从左向右以当前字母结尾的上升子序列的个数和从右向左的。。。

然后再把左边和右边的乘一下就行

 1 #include <iostream>
 2 #include <sstream>
 3 #include <ios>
 4 #include <iomanip>
 5 #include <functional>
 6 #include <algorithm>
 7 #include <vector>
 8 #include <string>
 9 #include <list>
10 #include <queue>
11 #include <deque>
12 #include <stack>
13 #include <set>
14 #include <map>
15 #include <cstdio>
16 #include <cstdlib>
17 #include <cmath>
18 #include <cstring>
19 #include <climits>
20 #include <cctype>
21 using namespace std;
22 #define XINF INT_MAX
23 #define INF 0x3FFFFFFF
24 #define MP(X,Y) make_pair(X,Y)
25 #define PB(X) push_back(X)
26 #define REP(X,N) for(int X=0;X<N;X++)
27 #define REP2(X,L,R) for(int X=L;X<=R;X++)
28 #define DEP(X,R,L) for(int X=R;X>=L;X--)
29 #define CLR(A,X) memset(A,X,sizeof(A))
30 #define IT iterator
31 typedef long long ll;
32 typedef pair<int,int> PII;
33 typedef vector<PII> VII;
34 typedef vector<int> VI;
35 #define MAXN 100010
36 int dp[1010];
37 int a[MAXN];
38 int dp1[MAXN],dp2[MAXN];
39 int main()
40 {
41     ios::sync_with_stdio(false);
42     int n;
43     char s;
44     while(cin>>n){
45         for(int i=0;i<n;i++){
46             cin>>s;
47             a[i]=s-'a';
48         }
49         CLR(dp,0);
50         CLR(dp1,0);
51         for(int i=0;i<n;i++){
52             for(int j=0;j<a[i];j++) dp1[i]+=dp[j];
53             while(dp1[i]>=2012)dp1[i]-=2012;
54             dp[a[i]]+=dp1[i]+1;
55             while(dp[a[i]]>=2012)dp[a[i]]-=2012;
56         }
57         CLR(dp,0);
58         CLR(dp2,0);
59         for(int i=n-1;i>=0;i--){
60             for(int j=0;j<a[i];j++) dp2[i]+=dp[j];
61             while(dp2[i]>=2012)dp2[i]-=2012;
62             dp[a[i]]+=dp2[i]+1;
63             while(dp[a[i]]>=2012)dp[a[i]]-=2012;
64         }
65         int ans=0;
66         for(int i=0;i<n;i++){
67             ans=(ans+dp1[i]*dp2[i])%2012;
68         }
69         cout<<ans<<endl;
70     }
71     return 0;
72 }

 

posted on 2015-04-06 23:40  xyiyy  阅读(199)  评论(0编辑  收藏  举报

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