hdu magic balls
magic balls
Time Limit: 6000/3000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 74 Accepted Submission(s):
10
Problem Description
The town of W has N people. Each person takes two magic
balls A and B every day. Each ball has the volume a![]()
i![]()
![]()
and b![]()
i![]()
![]()
. People often stand together. The wizard will find the longest increasing
subsequence in the ball A. The wizard has M energy. Each point of energy can
change the two balls’ volume.(swap(a![]()
i![]()
,b![]()
i![]()
)![]()
).The wizard wants to know how to make the longest increasing subsequence and
the energy is not negative in last. In order to simplify the problem, you only
need to output how long the longest increasing subsequence is.
Input
The first line contains a single integer T(1≤T≤20)![]()
(the data for N>100![]()
less than 6 cases), indicating the number of test cases.
Each test case begins with two integer N(1≤N≤1000)![]()
and M(0≤M≤1000)![]()
,indicating the number of people and the number of the wizard’s energy. Next N
lines contains two integer a![]()
i![]()
![]()
and b![]()
i![]()
(1≤a![]()
i![]()
,b![]()
i![]()
≤10![]()
9![]()
)![]()
,indicating the balls’ volume.
Each test case begins with two integer N(1≤N≤1000)
Output
For each case, output an integer means how long the
longest increasing subsequence is.
Sample Input
2
5 3
5 1
4 2
3 1
2 4
3 1
5 4
5 1
4 2
3 1
2 4
3 1
Sample Output
4
4
Source
思路: 建 m 棵线段树,里面维护的是权值,
PS :BC的pst好像都好水,写的时候那么大错误还过了。。
==
#include <stdio.h> #include <math.h> #include <string.h> #include <iostream> #include <vector> #include <map> #include <queue> #include <algorithm> #define LL long long #define maxn 2010 #define INF 0x3f3f3f3f #define mod 1000000007 using namespace std; int a[maxn],b[maxn],id[maxn] ; int ql,qr; short v ; struct node { int n,mid,hehe[maxn]; short Max[maxn*4]; void init(int n ) { for(int i=1;i<=n*4;i++) Max[i]=0; for(int i=1;i<=n;i++) hehe[i]=0; } void insert(int L,int R,int o ) { if(L==R) { Max[o]=v; hehe[L]=v; return ; } mid=(L+R)>>1 ; if(ql<=mid) insert(L,mid,o<<1) ; else insert(mid+1,R,o<<1|1) ; Max[o]=max(Max[o<<1],Max[o<<1|1]); } void find(int L,int R,int o) { if(ql<=L&&qr>=R) { v=max(Max[o],v) ; return ; } mid=(L+R)>>1 ; if(ql<=mid) find(L,mid,o<<1) ; if(qr>mid) find(mid+1,R,o<<1|1) ; } }qe[1010] ; int main() { int i,xx,yy,ans ; int j,n,m,pre,sz; int T,tmp,val; //freopen("in.txt","r",stdin); cin >> T ; while(T--) { scanf("%d%d",&n,&m) ; sz=0; for( i = 1 ; i <= n ;i++){ scanf("%d%d",&a[i],&b[i]) ; id[sz++]=a[i]; id[sz++]=b[i]; } sort(id,id+sz) ; sz=unique(id,id+sz)-id; ans=0; for( i = 0; i <= m;i++) { qe[i].init(sz); } for( i = 1 ; i <= n ;i++) { a[i]=lower_bound(id,id+sz,a[i])-id; b[i]=lower_bound(id,id+sz,b[i])-id; a[i]++;b[i]++; for( j = min(i,m); j >= 0 ;j--) { ql=1; qr=a[i]-1; v=0; if(ql<=qr) qe[j].find(1,sz,1) ; ql=a[i] ; v=v+1; tmp=v; if(qe[j].hehe[ql]<v)qe[j].insert(1,sz,1); if(j>0){ ql=1; qr=b[i]-1; v=0; if(ql<=qr) qe[j-1].find(1,sz,1) ; ql=b[i] ; v=v+1; tmp=max(tmp,(int)v); if(qe[j].hehe[ql]<v)qe[j].insert(1,sz,1); } ans=max(ans,tmp); } } cout<<ans<<endl; } return 0 ; }
