rock-paper-scissors

rock-paper-scissors
维护三个前缀和,然后注意顺序,最后做差来确定可行的答案,因为答案比较小,可以考虑这种暴力做法,像这种方案数可以++的题真的不多,如果想不出来特别优秀的想法,不妨简单化思维

 1 #include<iostream>
 2 #include<cstdio>
 3 #include<queue>
 4 #include<algorithm>
 5 #include<cmath>
 6 #include<ctime>
 7 #include<set>
 8 #include<map>
 9 #include<stack>
10 #include<cstring>
11 #define inf 2147483647
12 #define ls rt<<1
13 #define rs rt<<1|1
14 #define lson ls,nl,mid,l,r
15 #define rson rs,mid+1,nr,l,r
16 #define N 100010
17 #define For(i,a,b) for(int i=a;i<=b;i++)
18 #define p(a) putchar(a)
19 #define g() getchar()
20 
21 using namespace std;
22 int R[1010],S[1010],P[1010];
23 int n,m;
24 int T;
25 char a[1010];
26 int cnt;
27 void in(int &x){
28     int y=1;
29     char c=g();x=0;
30     while(c<'0'||c>'9'){
31         if(c=='-')y=-1;
32         c=g();
33     }
34     while(c<='9'&&c>='0'){
35         x=(x<<1)+(x<<3)+c-'0';c=g();
36     }
37     x*=y;
38 }
39 void o(int x){
40     if(x<0){
41         p('-');
42         x=-x;
43     }
44     if(x>9)o(x/10);
45     p(x%10+'0');
46 }
47 int main(){
48     in(T);
49     while(T--){
50         cnt=0;
51         in(n);
52         cin>>(a+1);
53         For(i,1,n){
54             if(a[i]=='R'){
55                 R[i]=R[i-1];
56                 S[i]=S[i-1]-1;
57                 P[i]=P[i-1]+1;
58             }
59             if(a[i]=='S'){
60                 R[i]=R[i-1]+1;
61                 S[i]=S[i-1];
62                 P[i]=P[i-1]-1;
63             }
64             if(a[i]=='P'){
65                 R[i]=R[i-1]-1;
66                 S[i]=S[i-1]+1;
67                 P[i]=P[i-1];
68             }
69         }
70         For(i,0,n)
71             For(j,0,n)
72                 if(i+j<=n&&R[i]+P[i+j]-P[i]+S[n]-S[j+i]>0)
73                     cnt++;
74         o(cnt);p('\n');
75     }
76     return 0;
77 }
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posted @ 2019-02-16 11:36  WeiAR  阅读(356)  评论(0编辑  收藏  举报