POJ 3278 抓牛简单广搜
Catch That Cow
| Time Limit: 2000MS | Memory Limit: 65536K | |
| Total Submissions: 75331 | Accepted: 23781 |
Description
Farmer John has been informed of the location of a fugitive cow and wants to catch her immediately. He starts at a pointN (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 orX
+ 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 andK
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.
如Hint中所说,在一条线上抓,输入的N是人的起始位置,K是牛的人要到达的位置
如Hint中所说,在一条线上抓,输入的N是人的起始位置,K是牛的人要到达的位置
#include <iostream>
#include <queue>
#include <cstdio>
#include <cstring>
using namespace std;
const int maxn = 100050;
int main()
{
queue<int> a;
int vis[maxn];
int n,k;
cin>>n>>k;
memset(vis,0,sizeof(vis));
int flag = 0;
vis[n]=1;
int step = 0;
a.push(n);
if(n!=k){ //要考虑这种情况,不然0步输出的是1步
while(!a.empty()&&!flag){
int t = a.size();//队列中元素的个数
step++;
while(t--){ //参考比较模板的while(head<tail),这里直接用的STL,所以形式变了
int next,nnext[3];
next = a.front();
nnext[0]=next+1;
nnext[1]=next-1;
nnext[2]=next*2;
a.pop();
for(int i = 0;i<3;i++){
if(nnext[i]==k){
flag=1;
break;}
if(nnext[i]>=1&&nnext[i]<=100000&&!vis[nnext[i]]){
vis[nnext[i]]=1;
a.push(nnext[i]);
}
}
if(flag) break;//我觉得这一步能省时间的,可是去掉不去掉提交的时间都一样,可能数据比较小吧
//当n=1,k=2时,在step=1时,进栈的顺序是2,0,0,找到第一个2直接退出,因为此时step都是1
}
}
}
cout<<step<<endl;
return 0;
}
