标签:startx starty point int Knight tail knight Moves
Description
Background
Mr Somurolov, fabulous chess-gamer indeed, asserts that no one else but him can move knights from one position to another so fast. Can you beat him?
The Problem
Your task is to write a program to calculate the minimum number of moves needed for a knight to reach one point from another, so that you have the chance to be faster than Somurolov.
For people not familiar with chess, the possible knight moves are shown in Figure 1.
Input
The input begins with the number n of scenarios on a single line by itself.
Next follow n scenarios. Each scenario consists of three lines containing integer numbers. The first line specifies the length l of a side of the chess board (4 <= l <= 300). The entire board has size l * l. The second and third line contain pair of integers {0, ..., l-1}*{0, ..., l-1} specifying the starting and ending position of the knight on the board. The integers are separated by a single blank. You can assume that the positions are valid positions on the chess board of that scenario.
Output
For each scenario of the input you have to calculate the minimal amount of knight moves which are necessary to move from the starting point to the ending point. If starting point and ending point are equal,distance is zero. The distance must be written on a single line.
Sample Input
3 8 0 0 7 0 100 0 0 30 50 10 1 1 1 1
Sample Output
5 28 0
思路:
BFS,广搜
由于这是广搜,所以第一次判断出到达终点的步数就是最小的。
#include<iostream>
#include<string.h>
using namespace std;
#define N 300
bool v[N][N];
struct point
{
int x;//行号
int y;//列号
int step;//步数
}point[100000];
int d[8][2]={{-2,1},{-1,2},{1,2},{2,1},{2,-1},{1,-2},{-1,-2},{-2,-1}};//偏移数组
int main()
{
int n;
scanf("%d",&n);
while(n--)
{
int L,startx,starty,p,q;//startx,stary起点坐标,p,q终点坐标
scanf("%d\n%d %d\n%d %d",&L,&startx,&starty,&p,&q);
//BFS
//对起点start初始化
int head=1;
int tail=1;
memset(v,0,sizeof(v));//赋值0
v[startx][starty]=1;
point[tail].x =startx;
point[tail].y =starty;
point[tail].step =0;
tail++;
while(head<tail)//如果不符合就是点相同
{
//使x,y分别为队首元素的行号和列号
int x=point[head].x;
int y=point[head].y;
int step=point[head].step;
//到终点的情况
if(x==p&&y==q)
{
printf("%d\n",step);
break;
}
//进行八个方向试探
for(int k=0;k<8;k++)
{
//tx,ty是试探的点
int tx,ty;
tx=x+d[k][0];
ty=y+d[k][1];
//当试探的点未访问时
if(tx>=0&&tx<L&&ty>=0&&ty<L&&v[tx][ty]==0)
{
//将该试探点入队
v[tx][ty]=1;
point[tail].x=tx;
point[tail].y=ty;
point[tail].step=step+1;
tail++;
}
}
head++;
}
}
return 0;
}标签:startx,starty,point,int,Knight,tail,knight,Moves 来源: https://blog.csdn.net/TherAndI/article/details/122652356
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