Codeforces Gym 100231B Intervals 线段树+二分+贪心
Intervals
题目连接:
http://codeforces.com/gym/100231/attachments
Description
给你n个区间,告诉你每个区间内都有ci个数
然后你需要找一个最小的点集,使得满足这n个区间的条件
Input
n
然后li,ri,ci
Output
输出最小点集大小
Sample Input
5
3 7 3
8 10 3
6 8 1
1 3 1
10 11 1
Sample Output
6
Hint
题意
题解:
线段树+二分+贪心
首先我们贪心一发,按照右端点排序之后,我们点肯定是优先放在右边
那么我们怎么确认有多少个放右边呢?
二分+线段树就好了,我们二分有多少个点放在右边,然后在用线段树的区间和来check是否大于ci就好了
代码
#include<bits/stdc++.h>
using namespace std;
#include<bits/stdc++.h>
using namespace std;
typedef int SgTreeDataType;
struct treenode
{
int L , R ;
SgTreeDataType sum , lazy;
void updata(SgTreeDataType v)
{
sum = (R-L+1)*v;
lazy = v;
}
};
treenode tree[301500];
inline void push_down(int o)
{
SgTreeDataType lazyval = tree[o].lazy;
if(lazyval!=0){
tree[2*o].updata(lazyval) ; tree[2*o+1].updata(lazyval);
tree[o].lazy = 0;
}
}
inline void push_up(int o)
{
tree[o].sum = tree[2*o].sum + tree[2*o+1].sum;
}
inline void build_tree(int L , int R , int o)
{
tree[o].L = L , tree[o].R = R,tree[o].sum = tree[o].lazy = 0;
if (R > L)
{
int mid = (L+R) >> 1;
build_tree(L,mid,o*2);
build_tree(mid+1,R,o*2+1);
}
}
inline void updata(int QL,int QR,SgTreeDataType v,int o)
{
if(QL>QR)return;
int L = tree[o].L , R = tree[o].R;
if (QL <= L && R <= QR) tree[o].updata(v);
else
{
push_down(o);
int mid = (L+R)>>1;
if (QL <= mid) updata(QL,QR,v,o*2);
if (QR > mid) updata(QL,QR,v,o*2+1);
push_up(o);
}
}
inline SgTreeDataType query(int QL,int QR,int o)
{
if(QL>QR)return 0;
int L = tree[o].L , R = tree[o].R;
if (QL <= L && R <= QR) return tree[o].sum;
else
{
push_down(o);
int mid = (L+R)>>1;
SgTreeDataType res = 0;
if (QL <= mid) res += query(QL,QR,2*o);
if (QR > mid) res += query(QL,QR,2*o+1);
push_up(o);
return res;
}
}
struct node
{
int l,r,c;
}p[52000];
bool cmp(node a,node b)
{
if(a.r==b.r&&a.l==b.l)
return a.c<b.c;
if(a.r==b.r)
return a.l>b.l;
return a.r<b.r;
}
int main()
{
int n;
scanf("%d",&n);
for(int i=1;i<=n;i++)
{
scanf("%d%d%d",&p[i].l,&p[i].r,&p[i].c);
p[i].l+=1,p[i].r+=1;
}
sort(p+1,p+1+n,cmp);
build_tree(1,p[n].r+100,1);
int ans = 0;
for(int i=1;i<=n;i++)
{
//int now = query(p[i].l,p[i].r,1);
//if(now<p[i].c)
//{
int L = p[i].l-1,R = p[i].r;
while(L<=R)
{
int mid = (L+R)/2;
if(query(p[i].l,mid,1)+(p[i].r-mid)>=p[i].c)
L=mid+1;
else
R=mid-1;
}
ans+=(p[i].r-L+1)-query(L,p[i].r,1);
//cout<<L<<" "<<p[i].r<<endl;
updata(L,p[i].r,1,1);
//}
}
//for(int i=1;i<=p[n].r;i++)
// cout<<query(i,i,1)<<" ";
//cout<<endl;
cout<<ans<<endl;
}
/*
5
3 7 3
8 10 3
6 8 1
1 3 1
10 11 1
*/