ACM: SCU 4440 Rectangle - 暴力
Description
Rectangle
frog has a piece of paper divided into nn rows and mm columns. Today, she would like to draw a rectangle whose perimeter is not greater than kk.
Find the number of ways of drawing.
Input
The input consists of multiple tests. For each test:
The first line contains 33 integer n,m,kn,m,k (1≤n,m≤5⋅104,0≤k≤1091≤n,m≤5⋅104,0≤k≤109).
Output
For each test, write 11 integer which denotes the number of ways of drawing.
Sample Input
2 2 6
1 1 0
50000 50000 1000000000
Sample Output
8
0
1562562500625000000
一开始以为是dp,但是数据会爆掉,然后放在一边了。。
后来其他题目不会写了后,回过来想这题,想了好久是暴力还是数学计算。。
虽然最后用的是暴力加数学计算。。。
单纯暴力坑定会超时,仔细想了下,可以暴力去枚举一条边,再去考虑另一条的具体情况。
最后在模拟另一条边的情况的时候推算要注意一点。
AC代码:
#include"algorithm" #include"iostream" #include"cstring" #include"cstdlib" #include"cstdio" #include"string" #include"vector" #include"queue" #include"cmath" #include"map" using namespace std; typedef long long LL ; #define memset(x,y) memset(x,y,sizeof(x)) #define memcpy(x,y) memcpy(x,y,sizeof(x)) #define FK(x) cout<<"["<<x<<"]\n" #define bigfor(T) for(int qq=1;qq<= T ;qq++) #define lson l,m,rt<<1 #define rson m+1,r,rt<<1|1 int main() { LL n,m,k; while(cin>>n>>m>>k) { k>>=1; LL ans = 0; for(int i=1; i<=n&&k-i>0; i++) { LL x=min(k-i,m); LL a=n-i+1; LL b=(m+m-x+1)*x/2; ans+=a*b; } cout<<ans<<endl; } return 0; }