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  • Cube Stacking

    Farmer John and Betsy are playing a game with N (1 <= N <=
    30,000)identical cubes labeled 1 through N. They start with N stacks,
    each containing a single cube. Farmer John asks Betsy to perform P
    (1<= P <= 100,000) operation. There are two types of operations:
    moves and counts.

    • In a move operation, Farmer John asks Bessie to move the stack containing cube X on top of the stack containing cube Y.
    • In a count operation, Farmer John asks Bessie to count the number of cubes on the stack with cube X that are under the cube X and report
      that value.

    Write a program that can verify the results of the game.

    Input

    • Line 1: A single integer, P

    • Lines 2…P+1: Each of these lines describes a legal operation. Line 2 describes the first operation, etc. Each line begins with a ‘M’ for a move operation or a ‘C’ for a count operation. For move operations, the line also contains two integers: X and Y.For count operations, the line also contains a single integer: X.

    Note that the value for N does not appear in the input file. No move operation will request a move a stack onto itself.
    Output
    Print the output from each of the count operations in the same order as the input file.

    Sample Input
    6
    M 1 6
    C 1
    M 2 4
    M 2 6
    C 3
    C 4
    Sample Output
    1
    0
    2

    题目大意:有若干个方块,经p次操作后,在x方块下面的方块有多少个。
    M操作—>将包含x方块的堆移到含y方块的堆上
    C操作—>输出x方块下方方块的数目

    解题思路:以堆最底部的方块作为父节点,dis[a]表示a到父节点的距离,rank[y]表示以y为底部的方块堆的大小,即含有多少个方块,借用find()更新dis。

    Code:

    #include<iostream>
    using namespace std;
    int n,x,y,pre[100005],dis[100005],rank[100005];
    char ch;//以最底部的为父节点,dis[a]表示a到父节点的距离 ,rank[]表示堆的大小 
    
    int find(int x){
    	if(pre[x]==x) return x;
    	else {
    		int r = pre[x];
    		pre[x]=find(r);
    		dis[x]+=dis[r];//dis[r] 表示x的父节点到堆底部的大小,dis[x]表示x到父节点的大小 
    	} 
    	return pre[x];
    }
    void join(int x,int y){
    	int fx=find(x),fy=find(y);
    	if(fx!=fy){
    		pre[fx]=fy;
    		dis[fx]=rank[fy];
    		rank[fy]+=rank[fx];
    	}
    }
    
    int main(){
    	while(cin>>n){
    		for(int i=1;i<=n;i++) pre[i]=i;
    		for(int i=1;i<=n;i++) rank[i]=1,dis[i]=0;
    		for(int i=1;i<=n;i++){
    			cin>>ch;
    			if(ch=='M'){
    				cin>>x>>y;
    				if(find(x)!=find(y)){
    					join(x,y);
    				}
    			}
    			else if(ch=='C'){
    				cin>>x;
    				find(x);
    				cout<<dis[x]<<endl;
    			}
    		}
    	}
    	return 0;
    }
    
    七月在野,八月在宇,九月在户,十月蟋蟀入我床下
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  • 原文地址:https://www.cnblogs.com/voids5/p/12695032.html
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