题目链接:Catch That Cow
解析:两个数n和k,三种操作:+1、-1、*2,问n最少经过多少次操作能和k相等。
最简单的bfs模板了,注意
+1的条件:x+1 <= k
-1的条件:x-1 >= 0
*2的条件:x <= k && 2*x <= 100000
AC代码:
#include <iostream> #include <cstdio> #include <algorithm> #include <queue> #include <cstring> using namespace std; struct Node { int n, step; }; bool vis[100005]; int bfs(int n, int k){ memset(vis, false, sizeof(vis)); queue<Node> Q; Q.push(Node{n, 0}); while(!Q.empty()){ Node now = Q.front(); Q.pop(); if(now.n == k) return now.step; if(now.n+1 <= k && !vis[now.n+1]){ vis[now.n+1] = true; Q.push(Node{now.n+1, now.step+1}); } if(now.n-1 >= 0 && !vis[now.n-1]){ vis[now.n-1] = true; Q.push(Node{now.n-1, now.step+1}); } if(now.n <= k && 2*now.n <= 100000 && !vis[2*now.n]){ vis[2*now.n] = true; Q.push(Node{2*now.n, now.step+1}); } } return -1; } int main(){ // freopen("in.txt", "r", stdin); int n, k; while(scanf("%d%d", &n, &k) == 2){ printf("%d\n", bfs(n, k)); } return 0; }