hdu1026 Ignatius and the Princess I(bfs+优先队列+记录路径)

Ignatius and the Princess I

Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 18858    Accepted Submission(s): 6093
Special Judge


Problem Description
The Princess has been abducted by the BEelzebub feng5166, our hero Ignatius has to rescue our pretty Princess. Now he gets into feng5166's castle. The castle is a large labyrinth. To make the problem simply, we assume the labyrinth is a N*M two-dimensional array which left-top corner is (0,0) and right-bottom corner is (N-1,M-1). Ignatius enters at (0,0), and the door to feng5166's room is at (N-1,M-1), that is our target. There are some monsters in the castle, if Ignatius meet them, he has to kill them. Here is some rules:

1.Ignatius can only move in four directions(up, down, left, right), one step per second. A step is defined as follow: if current position is (x,y), after a step, Ignatius can only stand on (x-1,y), (x+1,y), (x,y-1) or (x,y+1).
2.The array is marked with some characters and numbers. We define them like this:
. : The place where Ignatius can walk on.
X : The place is a trap, Ignatius should not walk on it.
n : Here is a monster with n HP(1<=n<=9), if Ignatius walk on it, it takes him n seconds to kill the monster.

Your task is to give out the path which costs minimum seconds for Ignatius to reach target position. You may assume that the start position and the target position will never be a trap, and there will never be a monster at the start position.
 

Input
The input contains several test cases. Each test case starts with a line contains two numbers N and M(2<=N<=100,2<=M<=100) which indicate the size of the labyrinth. Then a N*M two-dimensional array follows, which describe the whole labyrinth. The input is terminated by the end of file. More details in the Sample Input.
 

Output
For each test case, you should output "God please help our poor hero." if Ignatius can't reach the target position, or you should output "It takes n seconds to reach the target position, let me show you the way."(n is the minimum seconds), and tell our hero the whole path. Output a line contains "FINISH" after each test case. If there are more than one path, any one is OK in this problem. More details in the Sample Output.
 

Sample Input
 
   
5 6 .XX.1. ..X.2. 2...X. ...XX. XXXXX. 5 6 .XX.1. ..X.2. 2...X. ...XX. XXXXX1 5 6 .XX... ..XX1. 2...X. ...XX. XXXXX.
 

Sample Output
 
   
It takes 13 seconds to reach the target position, let me show you the way. 1s:(0,0)->(1,0) 2s:(1,0)->(1,1) 3s:(1,1)->(2,1) 4s:(2,1)->(2,2) 5s:(2,2)->(2,3) 6s:(2,3)->(1,3) 7s:(1,3)->(1,4) 8s:FIGHT AT (1,4) 9s:FIGHT AT (1,4) 10s:(1,4)->(1,5) 11s:(1,5)->(2,5) 12s:(2,5)->(3,5) 13s:(3,5)->(4,5) FINISH It takes 14 seconds to reach the target position, let me show you the way. 1s:(0,0)->(1,0) 2s:(1,0)->(1,1) 3s:(1,1)->(2,1) 4s:(2,1)->(2,2) 5s:(2,2)->(2,3) 6s:(2,3)->(1,3) 7s:(1,3)->(1,4) 8s:FIGHT AT (1,4) 9s:FIGHT AT (1,4) 10s:(1,4)->(1,5) 11s:(1,5)->(2,5) 12s:(2,5)->(3,5) 13s:(3,5)->(4,5) 14s:FIGHT AT (4,5) FINISH God please help our poor hero. FINISH
 

Author
Ignatius.L
 

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这道题做的我心力交瘁啊

bfs就不说了  关键是记录路径 我们可以把 当先移动的方向保存在结构体中。

一直超时 超时 。超时原因死活不明白。百度了许久看到有人说不要把变量定义在while循环里面。改了还是超时

最后发现 就在刚刚发现我的记录路径使用的int 数组,而且数组的范围是10005 我的天。。

while循环了那么多次  肯定要超时了  。。。

所以这次用string记录路径  31ms  AC

#include 
#include 
#include 
#include 
using namespace std;
struct node
{
	int x,y,cost;
	string step;//保存路径 
	friend bool operator<(node a,node b)
	{
		return a.cost>b.cost;
	}
};
int dir[4][2]={1,0,-1,0,0,1,0,-1};
bool vis[110][110];
int map[110][110];
int n,m,i,j;
bool limit(int x,int y)
{
	if(x<0||y<0||x>=n||y>=m||map[x][y]==-1) return false;
	return true;
}
node bfs()
{
	node n1,n2;
//	printf("%d %d %d %d",n1.x,n1.y,n1.cost,n1.index);
	priority_queues;
	n1.x=0;
	n1.y=0;
	n1.cost=0;
	s.push(n1);
	vis[0][0]=true;
	while(!s.empty())
	{
		n1=s.top();s.pop();
		if(n1.x==n-1&&n1.y==m-1)
		return n1;
		
		for(i=0;i<4;i++)
		{
			n2=n1;
			n2.x=n1.x+dir[i][0];
			n2.y=n1.y+dir[i][1];
			if(!limit(n2.x,n2.y)||vis[n2.x][n2.y]) continue;
			
			vis[n2.x][n2.y]=true;
			n2.step+=i+'0';//加入当前移动的方向 
			n2.cost+=map[n2.x][n2.y]+1; 	
			if(n2.x==n-1&&n2.y==m-1) return n2;
			s.push(n2);
		}
	}
	n1.cost=-1;
	return n1;
}
int main()
{
	while(~scanf("%d %d",&n,&m))
	{
		memset(map,0,sizeof(map));
		memset(vis,false,sizeof(vis));
		char str[150];
		for(i=0;i(%d,%d)\n",cost,st_x,st_y,ed_x,ed_y);
			if(map[ed_x][ed_y]>=1&&map[ed_x][ed_y]<=9)
			{
				c=map[ed_x][ed_y];
				while(c--)
				{
					printf("%ds:FIGHT AT (%d,%d)\n",++cost,ed_x,ed_y);
				}
			}
			st_x=ed_x;
			st_y=ed_y;
		}
		printf("FINISH\n");
	}
	return 0;
} 


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