题意:
给出农夫和牛的位置,求农夫抓到牛的最短时间,农夫可以选择前进一步,后退一步,当前位置坐标变成两倍。每做出一次选择都要花费一秒、
思路:
以前是用数组做的,现在重新用队列做了一遍,vis标记的时候=打成==,结果死循环。
#include<iostream>
#include<cstdio>
#include<queue>
#include<cstring>
#define mx 100000
using namespace std;
struct aa{
int x,bu;
aa(int x_=0,int bu_=0){
x=x_;bu=bu_;
}
};
queue<aa>q;
int st,en,vis[100010];
int bfs(int st){
aa now;
q.push(aa(st,0));
vis[st]=1;
while(!q.empty()){
now=q.front();
q.pop();
int x=now.x;
if(x==en) return now.bu;
if(x<en){
if(x-1>=0&&vis[x-1]==0){
// cout<<"后退"<<endl;
vis[x-1]=1;
q.push(aa(x-1,now.bu+1));
}
if(x+1<=mx&&vis[x+1]==0){//youhua
// cout<<"前进"<<endl;
vis[x+1]=1;
q.push(aa(x+1,now.bu+1));
}
if(2*x<=mx&&vis[2*x]==0){
// cout<<"两倍"<<endl;
vis[2*x]=1;
q.push(aa(2*x,now.bu+1));
}
}
else{
if(x-1>=0&&vis[x-1]==0){
// cout<<"过头后退"<<endl;
vis[x-1]=1;
q.push(aa(x-1,now.bu+1));
}
}
}
}
int main(){
while(scanf("%d%d",&st,&en)!=EOF){
if(!q.empty()) q.pop();
memset(vis,0,sizeof(vis));
printf("%d\n",bfs(st));
}
return 0;
}
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