探讨了如何通过并查集算法解决Ignatius生日派对中朋友分桌的问题,确保互相认识的朋友能坐在一起。
Today is Ignatius' birthday. He invites a lot of friends. Now it's dinner time. Ignatius wants to know how many tables he needs at least. You have to notice that not all the friends know each other, and all the friends do not want
to stay with strangers.
One important rule for this problem is that if I tell you A knows B, and B knows C, that means A, B, C know each other, so they can stay in one table.
For example: If I tell you A knows B, B knows C, and D knows E, so A, B, C can stay in one table, and D, E have to stay in the other one. So Ignatius needs 2 tables at least.
One important rule for this problem is that if I tell you A knows B, and B knows C, that means A, B, C know each other, so they can stay in one table.
For example: If I tell you A knows B, B knows C, and D knows E, so A, B, C can stay in one table, and D, E have to stay in the other one. So Ignatius needs 2 tables at least.
2 5 3 1 2 2 3 4 5 5 1 2 5
2 4
解题思路:并查集的类型都相差不大,所以我仍然用的模板。只是稍作修改
#include <iostream> #include <cstdio> using namespace std; #define maxn 100010 int pre[maxn]; bool Set[maxn]; int flag=1; int Find(int x) { while(pre[x]!=x) x=pre[x]; return x; } void join(int x,int y) { int a=Find(x); int b=Find(y); if(a!=b)pre[a]=b; else flag=0;//模板有这一步,习惯上带上 } int main() { //freopen("C.txt","r",stdin); int n; cin>>n; while(n--) { int N,M; cin>>N>>M; for(int i=1;i<=N;i++) { pre[i]=i; Set[i]=0; } int a,b,root_num=0; while(M--) { cin>>a>>b; if(a<b)join(a,b); //习惯上把大的设为父亲 else join(b,a); } for(int i=1;i<=N;i++) { if(pre[i]==i)root_num++;//计算根的数目 } cout<<root_num<<endl; } return 0; }
喜欢这个https://yq.aliyun.com/articles/15396
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