题意翻译
题目描述
每年,在威斯康星州,奶牛们都会穿上衣服,收集农夫约翰在N(1<=N<=100,000)个牛棚隔间中留下的糖果,以此来庆祝美国秋天的万圣节。
由于牛棚不太大,FJ通过指定奶牛必须遵循的穿越路线来确保奶牛的乐趣。为了实现这个让奶牛在牛棚里来回穿梭的方案,FJ在第i号隔间上张贴了一个“下一个隔间”Next_i(1<=Next_i<=N),告诉奶牛要去的下一个隔间;这样,为了收集它们的糖果,奶牛就会在牛棚里来回穿梭了。
FJ命令奶牛i应该从i号隔间开始收集糖果。如果一只奶牛回到某一个她已经去过的隔间,她就会停止收集糖果。
在被迫停止收集糖果之前,计算一下每头奶牛要前往的隔间数(包含起点)。
输入格式
第1行 整数n。
第2行到n+1行 每行包含一个整数 next_i 。
输出格式
n行,第i行包含一个整数,表示第i只奶牛要前往的隔间数。
样例解释
有4个隔间
隔间1要求牛到隔间1
隔间2要求牛到隔间3
隔间3要求牛到隔间2
隔间4要求牛到隔间3
牛1,从1号隔间出发,总共访问1个隔间;
牛2,从2号隔间出发,然后到三号隔间,然后到2号隔间,终止,总共访问2个隔间;
牛3,从3号隔间出发,然后到2号隔间,然后到3号隔间,终止,总共访问2个隔间;
牛4,从4号隔间出发,然后到3号隔间,然后到2号隔间,然后到3号隔间,终止,总共访问3个隔间。
翻译提供者:吃葡萄吐糖
题目描述
Every year in Wisconsin the cows celebrate the USA autumn holiday of Halloween by dressing up in costumes and collecting candy that Farmer John leaves in the N (1 <= N <= 100,000) stalls conveniently numbered 1..N.
Because the barn is not so large, FJ makes sure the cows extend their fun by specifying a traversal route the cows must follow. To implement this scheme for traveling back and forth through the barn, FJ has posted a 'next stall number' next_i (1 <= next_i <= N) on stall i that tells the cows which stall to visit next; the cows thus might travel the length of the barn many times in order to collect their candy.
FJ mandates that cow i should start collecting candy at stall i. A cow stops her candy collection if she arrives back at any stall she has already visited.
Calculate the number of unique stalls each cow visits before being forced to stop her candy collection.
POINTS: 100
每年万圣节,威斯康星的奶牛们都要打扮一番,出门在农场的N个牛棚里转 悠,来采集糖果.她们每走到一个未曾经过的牛棚,就会采集这个棚里的1颗糖果.
农场不大,所以约翰要想尽法子让奶牛们得到快乐.他给每一个牛棚设置了一个“后继牛 棚”.牛棚i的后继牛棚是next_i 他告诉奶牛们,她们到了一个牛棚之后,只要再往后继牛棚走去, 就可以搜集到很多糖果.事实上这是一种有点欺骗意味的手段,来节约他的糖果.
第i只奶牛从牛棚i开始她的旅程.请你计算,每一只奶牛可以采集到多少糖果.
输入输出格式
输入格式:* Line 1: A single integer: N
* Lines 2..N+1: Line i+1 contains a single integer: next_i
输出格式:* Lines 1..N: Line i contains a single integer that is the total number of unique stalls visited by cow i before she returns to a stall she has previously visited.
输入输出样例
说明
Four stalls.
* Stall 1 directs the cow back to stall 1.
* Stall 2 directs the cow to stall 3
* Stall 3 directs the cow to stall 2
* Stall 4 directs the cow to stall 3
Cow 1: Start at 1, next is 1. Total stalls visited: 1.
Cow 2: Start at 2, next is 3, next is 2. Total stalls visited: 2. Cow 3: Start at 3, next is 2, next is 3. Total stalls visited: 2. Cow 4: Start at 4, next is 3, next is 2, next is 3. Total stalls visited: 3
建完图后会发现图是由多个半联通分量组成的,而每一个半联通分量都是k个点k条边,也就一些树的树顶组成是一个环的结构(ZUTTER在7/27/2018的sdsc中学到这东西叫基环树)。
所以我们发现只要在建完图后遍历每一个点,发现未到过就沿着它一直向上找直到一个我们遍历过的点形成环为止,把环上点用栈存下来,再从每一个环上的点开始遍历其子树,记录树上点的深度加环的大小及为前往隔间数
#include<iostream>
#include<cstdio>
using namespace std;
int dfn[100001],i,m,n,j,k,g,a[100001],f[100001],w[100001];
bool b[100001],bl[100001],bb,bo[1000001];
int cnt,ver[1000001],nex[1000001],head[1000001];
void add(int x,int y)
{
cnt+=1;
ver[cnt]=y;
nex[cnt]=head[x];
head[x]=cnt;
}
void dfs(int x,int k)
{
dfn[x]=k;
bo[x]=1; b[x]=1;
for(int i=head[x];i;i=nex[i])
{
int t=ver[i];
if((!bo[t])&&(!bl[t])) dfs(t,k+1);
}
f[x]=dfn[x]+w[0];
}
void cha(int k)
{
if(b[k])
{
bb=1;
w[0]+=1;
w[w[0]]=k;
bl[k]=1;
g=k;
return;
}
b[k]=1;
cha(a[k]);
if(bb)
{
if(k==g) bb=0;
if(bl[k]) return;
bl[k]=1;
w[0]+=1;
w[w[0]]=k;
}
}
int main()
{
scanf("%d",&n);
for(i=1;i<=n;i++)
{
scanf("%d",&a[i]);
add(a[i],i);
}
for(i=1;i<=n;i++)
if(!b[i])
{
w[0]=0;
cha(i);
for(j=1;j<=w[0];j++) dfs(w[j],0);
}
for(i=1;i<=n;i++) printf("%d
",f[i]);
}