LianLianKan
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 840 Accepted Submission(s): 280
Problem Description
I like playing game with my friend, although sometimes looks pretty naive. Today I invent a new game called LianLianKan. The game is about playing on a number stack.
Now we have a number stack, and we should link and pop the same element pairs from top to bottom. Each time, you can just link the top element with one same-value element. After pop them from stack, all left elements will fall down. Although the game seems to be interesting, it's really naive indeed.
To prove I am a wisdom among my friend, I add an additional rule to the game: for each top element, it can just link with the same-value element whose distance is less than 6 with it.
Before the game, I want to check whether I have a solution to pop all elements in the stack.
Now we have a number stack, and we should link and pop the same element pairs from top to bottom. Each time, you can just link the top element with one same-value element. After pop them from stack, all left elements will fall down. Although the game seems to be interesting, it's really naive indeed.
To prove I am a wisdom among my friend, I add an additional rule to the game: for each top element, it can just link with the same-value element whose distance is less than 6 with it.
Before the game, I want to check whether I have a solution to pop all elements in the stack.
Input
There are multiple test cases.
The first line is an integer N indicating the number of elements in the stack initially. (1 <= N <= 1000)
The next line contains N integer ai indicating the elements from bottom to top. (0 <= ai <= 2,000,000,000)
The first line is an integer N indicating the number of elements in the stack initially. (1 <= N <= 1000)
The next line contains N integer ai indicating the elements from bottom to top. (0 <= ai <= 2,000,000,000)
Output
For each test case, output “1” if I can pop all elements; otherwise output “0”.
Sample Input
2 1 1 3 1 1 1 2 1000000 1
Sample Output
1 0 0
Source
Recommend
liuyiding
直接暴力DFS。很简单。。。注意细节。还有前面要用map来判断,否则会超时。
听说比较坑的题目。。。好像现在距离取5和6都可以AC了。
#include<stdio.h> #include<string.h> #include<iostream> #include<map> #include<algorithm> using namespace std; const int MAXN=1010; int a[MAXN]; bool used[MAXN]; int dfs(int n) { while(n>0&&used[n])n--; if(n==0)return 1; if(n==1)return 0; int i=0; int j=n-1; for(;i<=5;)//这里取i<5和i<=5都可以AC { if(j<=0)return 0;//没有找到相等的 if(used[j]) { j--; continue; } if(a[n]==a[j]) { used[j]=true; if(dfs(n-1)) return 1; used[j]=false; } i++; j--; } return 0; } map<int,int>mp; int main() { int n; while(scanf("%d",&n)!=EOF) { mp.clear(); for(int i=1;i<=n;i++) { scanf("%d",&a[i]); used[i]=false; mp[a[i]]++; } if(n&1) { printf("0\n"); continue; } int t=1; //加个map判断就是0ms,否则就是TLE map<int,int>::iterator it; for(it=mp.begin();it!=mp.end();it++) { if((it->second)%2==1) { t=0; break; } } if(t==0) { printf("0\n"); continue; } printf("%d\n",dfs(n)); } return 0; }