https://codeforc.es/contest/293/problem/E
题解:
如果我们和poj1741一样,暴力预处理出子树中所有的点对信息
那么问题就变成了一个二维偏序问题
多少个点对满足w1+w2<=W且l1+l2<=L
参考树状数组求逆序对,用树状数组保存l1的信息,对于每个l2,查询前缀和,然后删除自身
注意细节
#include<bits/stdc++.h>
#define endl '
'
#define ll long long
#define ull unsigned long long
#define fi first
#define se second
#define mp make_pair
#define pii pair<ll,int>
#define all(x) x.begin(),x.end()
#define IO ios::sync_with_stdio(false)
#define show(x) cout<<#x<<"="<<x<<endl
#define show2(x,y) cout<<#x<<"="<<x<<" "<<#y<<"="<<y<<endl
#define show3(x,y,z) cout<<#x<<"="<<x<<" "<<#y<<"="<<y<<" "<<#z<<"="<<z<<endl
#define show4(w,x,y,z) cout<<#w<<"="<<w<<" "<<#x<<"="<<x<<" "<<#y<<"="<<y<<" "<<#z<<"="<<z<<endl
#define show5(v,w,x,y,z) cout<<#v<<"="<<v<<" "<<#w<<"="<<w<<" "<<#x<<"="<<x<<" "<<#y<<"="<<y<<" "<<#z<<"="<<z<<endl
#define showa(a,b) cout<<#a<<'['<<b<<"]="<<a[b]<<endl
#define rep(ii,a,b) for(int ii=a;ii<=b;++ii)
#define per(ii,a,b) for(int ii=b;ii>=a;--ii)
#define forn(i,x) for(int i=head[x];i;i=e[i].next)
using namespace std;
const int maxn=1e5+10,maxm=2e5+10;
const int INF=0x3f3f3f3f;
const int mod=1e9+7;
const double PI=acos(-1.0);
int casn,n,m;
ll k;
struct bit{
ll node[maxn];
inline int lb(int x) {return x&(-x);}
inline void update(int pos,ll val=1){
pos++;if(pos<=0) return ;
for(int i=pos;i&&i<=n;i+=lb(i))node[i]+=val;
}
inline ll ask(int pos){
ll sum=0;pos++;if(pos<=0) return 0;
for(int i=pos;i>0;i-=lb(i))sum+=node[i];return sum;
}
inline ll query(int l,int r){return ask(r)-ask(l-1);}
}tree;
class graph{public:
struct node{int to,next;ll cost;}e[maxm];
int head[maxn],nume,n,sz[maxn],maxt,stree[maxn];
void add(int a,int b,ll c=0){e[++nume]={b,head[a],c};head[a]=nume;}
int vis[maxn],num[maxn],all,mid;
void getmid(int now=1,int pre=0){
sz[now]=1;
for(int i=head[now];i;i=e[i].next){
if(e[i].to==pre||vis[e[i].to]) continue;
getmid(e[i].to,now);
sz[now]+=sz[e[i].to];
}
int tmp=max(sz[now]-1,all-sz[now]);
if(maxt>tmp) maxt=tmp,mid=now;
}//base
pii dis[maxn];
int dfn,mxd;
ll ans;
void init(int n){
this->n=n,nume=1,mid=0;
rep(i,1,n) vis[i]=head[i]=0;
}
ll getdis(int now,int pre,int d,ll s){
dis[++dfn]={s,d};mxd=max(mxd,d);
for(int i=head[now];i;i=e[i].next){
int to=e[i].to;
if(to==pre||vis[to]) continue;
getdis(to,now,d+1,s+e[i].cost);
}
}
ll getans(int now,int d=0,ll s=0){
dfn=0;mxd=0;
getdis(now,0,d,s);
sort(dis+1,dis+1+dfn);
ll ans=0;
int l=1,r=dfn;
while(l<r&&dis[l].fi+dis[r].fi>k)r--;
rep(i,l+1,r) tree.update(dis[i].se);
while(l<r){
if(dis[l].fi+dis[r].fi<=k) {
ans+=tree.ask(min(m-dis[l].se,mxd));
tree.update(dis[++l].se,-1);
}else tree.update(dis[r--].se,-1);
}
return ans;
}
void divide(int now){
vis[now]=1;ans+=getans(now);
for(int i=head[now];i;i=e[i].next){
int to=e[i].to;
if(vis[to]) continue;
ans-=getans(to,1,e[i].cost);
all=sz[to],maxt=n+1;
getmid(to,now);divide(mid);
}
}
void solve(){
ans=0;maxt=all=n;
getmid();divide(mid);
}
}g;
int main() {IO;
cin>>n>>m>>k;
g.init(n);
rep(i,2,n){
int a;ll c;cin>>a>>c;
g.add(i,a,c);g.add(a,i,c);
}
g.solve();
cout<<g.ans<<endl;
}