poj3278 Catch That Cow(简单的一维bfs)
http://poj.org/problem?id=3278
Catch That Cow
Time Limit: 2000MS | Memory Limit: 65536K | |
Total Submissions: 47010 | Accepted: 14766 |
Description
Farmer John has been informed of the location of a fugitive cow and wants to catch her immediately. He starts at a point N (0 ≤ N ≤ 100,000) on a number line and the cow is at a point K (0 ≤ K ≤ 100,000) on the same number line. Farmer John has two modes of transportation: walking and teleporting.
* Walking: FJ can move from any point X to the points X - 1 or X + 1 in a single minute
* Teleporting: FJ can move from any point X to the point 2 × X in a single minute.
If the cow, unaware of its pursuit, does not move at all, how long does it take for Farmer John to retrieve it?
Input
Line 1: Two space-separated integers: N and K
Output
Line 1: The least amount of time, in minutes, it takes for Farmer John to catch the fugitive cow.
Sample Input
5 17
Sample Output
4
Hint
The fastest way for Farmer John to reach the fugitive cow is to move along the following path: 5-10-9-18-17, which takes 4 minutes.
数组必须开大点
#include <iostream> #include <stdio.h> #include <string.h> #include <stdlib.h> using namespace std; struct node { int x,ans; } q[1000005]; int jx[]= {-1,1}; int n,k; int map[1000005],v[1000005]; void bfs() { struct node t,f; int e=0,s=0; t.x=n; v[t.x]=1; t.ans=0; q[e++]=t; while(s<e) { t=q[s++]; if(t.x==k) { printf("%d\n",t.ans); break; } for(int i=0; i<3; i++) { if(i==2) f.x=t.x*2; else f.x=t.x+jx[i]; if(!v[f.x]&&f.x>=0&&f.x<=100000) { f.ans=t.ans+1; q[e++]=f; v[f.x]=1; } } } } int main() { while(scanf("%d%d",&n,&k)!=EOF) { memset(map,0,sizeof(map)); memset(v,0,sizeof(v)); bfs(); } return 0; }