Fzu Problem 2082 过路费 LCT,动态树

时间:2022-12-14 21:04:45
Problem 2082 过路费

Accept: 528    Submit: 1654
Time Limit: 1000 mSec    Memory Limit : 32768 KB

Fzu Problem 2082 过路费 LCT,动态树 Problem Description

有n座城市,由n-1条路相连通,使得任意两座城市之间可达。每条路有过路费,要交过路费才能通过。每条路的过路费经常会更新,现问你,当前情况下,从城市a到城市b最少要花多少过路费。

Fzu Problem 2082 过路费 LCT,动态树 Input

有多组样例,每组样例第一行输入两个正整数n,m(2 <= n<=50000,1<=m <= 50000),接下来n-1行,每行3个正整数a b c,(1 <= a,b <= n , a != b , 1 <= c <= 1000000000).数据保证给的路使得任意两座城市互相可达。接下来输入m行,表示m个操作,操作有两种:一. 0 a b,表示更新第a条路的过路费为b,1 <= a <= n-1 ; 二. 1 a b , 表示询问a到b最少要花多少过路费。

Fzu Problem 2082 过路费 LCT,动态树 Output

对于每个询问,输出一行,表示最少要花的过路费。

Fzu Problem 2082 过路费 LCT,动态树 Sample Input

2 3
1 2 1
1 1 2
0 1 2
1 2 1

Fzu Problem 2082 过路费 LCT,动态树 Sample Output

1
2

Fzu Problem 2082 过路费 LCT,动态树 Source

FOJ有奖月赛-2012年4月(校赛热身赛)

 
 
题解:
直接动态树维护树上两点间的和即可。。。
注意开long long。。。
 #include<cstdio>

 #include<cstring>

 #include<cstdlib>

 #include<cmath>

 #include<iostream>

 #include<algorithm>

 using namespace std;

 #define LL long long

 #define MAXN 50010

 struct node

 {

     int left,right,val;

     LL sum;

 }tree[MAXN*];

 int father[MAXN*],Stack[*MAXN],rev[*MAXN];

 int read()

 {

     int s=,fh=;char ch=getchar();

     while(ch<''||ch>''){if(fh=='-')fh=-;ch=getchar();}

     while(ch>=''&&ch<=''){s=s*+(ch-'');ch=getchar();}

     return s*fh;

 }

 int isroot(int x)

 {

     return tree[father[x]].left!=x&&tree[father[x]].right!=x;

 }

 void pushdown(int x)

 {

     int l=tree[x].left,r=tree[x].right;

     if(rev[x]!=)

     {

         rev[x]^=;rev[l]^=;rev[r]^=;

         swap(tree[x].left,tree[x].right);

     }

 }

 void Pushup(int x)

 {

     int l=tree[x].left,r=tree[x].right;

     tree[x].sum=tree[l].sum+tree[r].sum+tree[x].val;

 }

 void rotate(int x)

 {

     int y=father[x],z=father[y];

     if(!isroot(y))

     {

         if(tree[z].left==y)tree[z].left=x;

         else tree[z].right=x;

     }

     if(tree[y].left==x)

     {

         father[x]=z;father[y]=x;tree[y].left=tree[x].right;tree[x].right=y;father[tree[y].left]=y;

     }

     else

     {

         father[x]=z;father[y]=x;tree[y].right=tree[x].left;tree[x].left=y;father[tree[y].right]=y;

     }

     Pushup(y);Pushup(x);

 }

 void splay(int x)

 {

     int top=,i,y,z;Stack[++top]=x;

     for(i=x;!isroot(i);i=father[i])Stack[++top]=father[i];

     for(i=top;i>=;i--)pushdown(Stack[i]);

     while(!isroot(x))

     {

         y=father[x];z=father[y];

         if(!isroot(y))

         {

             if((tree[y].left==x)^(tree[z].left==y))rotate(x);

             else rotate(y);

         }

         rotate(x);

     }

 }

 void access(int x)

 {

     int last=;

     while(x!=)

     {

         splay(x);

         tree[x].right=last;Pushup(x);

         last=x;x=father[x];

     }

 }

 void makeroot(int x)

 {

     access(x);splay(x);rev[x]^=;

 }

 void link(int u,int v)

 {

     makeroot(u);father[u]=v;splay(u);

 }

 void cut(int u,int v)

 {

     makeroot(u);access(v);splay(v);father[u]=tree[v].left=;

 }

 int findroot(int x)

 {

     access(x);splay(x);

     while(tree[x].left!=)x=tree[x].left;

     return x;

 }

 int main()

 {

     int n,m,i,fh,aa,bb,cc;

     while(scanf("%d %d",&n,&m)!=EOF)

     {

         for(i=;i<=*n;i++)tree[i].sum=tree[i].left=tree[i].right=tree[i].val=father[i]=rev[i]=;

         for(i=;i<n;i++)

         {

             aa=read();bb=read();cc=read();

             tree[n+i].val=cc;

             link(aa,n+i);link(n+i,bb);

         }

         for(i=;i<=m;i++)

         {

             fh=read();aa=read();bb=read();

             if(fh==)

             {

                 splay(n+aa);

                 tree[n+aa].val=bb;

             }

             else

             {

                 makeroot(aa);access(bb);splay(bb);

                 printf("%lld\n",tree[bb].sum);

             }

         }

     }

     return ;

 }

相关文章