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UVA 11538:Chess Queen

时间:2016-05-07 07:35:38      阅读:212      评论:0      收藏:0      [点我收藏+]

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Chess Queen

You probably know how the game of chess is played and how chess queen operates. Two chess queens are in attacking position when they are on same row, column or diagonal of a chess board. Suppose two such chess queens (one black and the other white) are placed on (2×2) chess board. They can be in attacking positions in 12 ways, these are shown in the picture below:

技术分享

Given an (NxM) board you will have to decide in how many ways 2 queens can be in attacking position in that.

Input

Input file can contain up to 5000 lines of inputs. Each line contains two non-negative integers which denote the value of M and N (0< M, N£106) respectively.

Input is terminated by a line containing two zeroes. These two zeroes need not be processed.

Output

For each line of input produce one line of output. This line contains an integer which denotes in how many ways two queens can be in attacking position in  an (MxN) board, where the values of M and N came from the input. All output values will fit in 64-bit signed integer.

 

Sample Input                                                               Output for Sample Input

2 2

100 223

2300 1000

0 0

12

10907100

11514134000

 

 

【题意】

给定一个棋盘,在棋盘上放两个皇后(一百一黑),求使得两个皇后相互攻击(在一行、一列或对角线)的方案数。

1.在一行或一列:n*m(m-1),m*n*(n-1)

2.在对角线,假设n<m,则各对角线长度:1,2,3……n-1,n,n,……n,n-1,n-2,……1.

n-m+1个n。假设长度为l,则该对角线的方案数:l*(l-1)。将所有的加起来即可。

#include<iostream>
#include<cstdio>
using namespace std;

int main()
{
    long long int n,m;
    while(~scanf("%lld%lld",&n,&m)&&n&&m)
    {
        if(n>m)swap(n,m);
        long long int ans=(n-1)*n*m+(m-1)*m*n+2*n*(n-1)*(m-n+1);
        ans+=2*2*(n-2)*(n-1)*(n)/3;
        printf("%lld\n",ans);
    }
    return 0;
}

UVA 11538:Chess Queen

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原文地址:http://blog.csdn.net/qq_28954601/article/details/51334110

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