题意简析
给定一个区间,可以在这个区间上每个整数点插入若干个数(这些数数值可以重复)你需要支持2种操作:
1)在[a,b]间所有整数点插入c
2)查询[a,b]内第c大的数
解题思路
树套树裸题,外层是权值线段树,内层是普通线段树,通过将操作1的c离散后维护即可。
总复杂度均为(O(nlog_{2}^{2}n)).
#include <stdio.h>
#include <algorithm>
#define Uint unsigned int
#define MN 50005
#define getchar() (S==TT&&(TT=(S=BB)+fread(BB,1,1<<15,stdin),TT==S)?EOF:*S++)
char BB[1<<15],*S=BB,*TT=BB;
inline int in(){
int x=0; bool f=0; char c;
for (;(c=getchar())<'0'||c>'9';f=c=='-');
for (x=c-'0';(c=getchar())>='0'&&c<='9';x=(x<<3)+(x<<1)+c-'0');
return f?-x:x;
}int n,q,op[MN],a[MN],b[MN],c[MN],v[MN],rk[MN],cnt,A,B,V;
#define mid (l+r>>1)
struct node{
node *ls,*rs;Uint sum,mark;
node(){ls=rs=NULL;sum=mark=0;}
inline void ad(Uint l,Uint x){sum+=x*l;mark+=x;}
inline void pushdown(int l,int r){
if (!mark||l==r) return;
if (!ls) ls=new node();if (!rs) rs=new node();
ls->ad(mid-l+1,mark);rs->ad(r-mid,mark);mark=0;
}
inline void pushup(){sum=(ls?ls->sum:0)+(rs?rs->sum:0);}
};
void update(int l,int r,int ad,node *&x){
if (l>B||r<A) return;if (x==NULL) x=new node();
if (A<=l&&r<=B){x->ad(r-l+1,ad);return;}
x->pushdown(l,r);update(l,mid,ad,x->ls);
update(mid+1,r,ad,x->rs);x->pushup();
}
Uint query(int l,int r,node *&x){
if (x==NULL||l>B||r<A) return 0;
if (l>=A&&r<=B) return x->sum;x->pushdown(l,r);
return query(l,mid,x->ls)+query(mid+1,r,x->rs);
}
struct node2D{
node2D *ls,*rs;node *val;
node2D(){ls=rs=NULL;val=NULL;}
}*root;
#define midd (L+R>>1)
void U(int L,int R,node2D *&x){
if (x==NULL) x=new node2D();
if (L!=R){
if (V<=midd) U(L,midd,x->ls);
else U(midd+1,R,x->rs);
}update(1,n,1,x->val);
}
Uint Q(int L,int R,node2D *x){
if (x==NULL) return 0;if (L==R)return L;
register Uint tmp=x->rs?query(1,n,x->rs->val):0;
if (tmp>=V) return Q(midd+1,R,x->rs);
else return V-=tmp,Q(L,midd,x->ls);
}
inline bool cmp(int a,int b){return c[a]<c[b];}
void init(){
n=in(),q=in();for (int i=1; i<=q; ++i)
op[i]=in(),a[i]=in(),b[i]=in(),c[i]=in(),(op[i]==1)?v[++cnt]=i:0;
std::sort(v+1,v+cnt+1,cmp);for (register int i=1; i<=cnt; ++i) rk[v[i]]=i;
}
void solve(){
for (register int i=1; i<=q; ++i){
if (op[i]==1) A=a[i],B=b[i],V=rk[i],U(1,cnt,root);
else A=a[i],B=b[i],V=c[i],printf("%d
",c[v[Q(1,cnt,root)]]);
}
}int main(){init();solve();}