Intervals
| Time Limit: 2000MS | Memory Limit: 65536K | |
| Total Submissions: 22781 | Accepted: 8613 |
Description
You are given n closed, integer intervals [ai, bi] and n integers c1, ..., cn.
Write a program that:
reads the number of intervals, their end points and integers c1, ..., cn from the standard input,
computes the minimal size of a set Z of integers which has at least ci common elements with interval [ai, bi], for each i=1,2,...,n,
writes the answer to the standard output.
Write a program that:
reads the number of intervals, their end points and integers c1, ..., cn from the standard input,
computes the minimal size of a set Z of integers which has at least ci common elements with interval [ai, bi], for each i=1,2,...,n,
writes the answer to the standard output.
Input
The first line of the input contains an integer n (1 <= n <= 50000) -- the number of intervals. The following n lines describe the intervals. The (i+1)-th line of the input contains three integers ai, bi and ci separated by single spaces and such that 0 <= ai <= bi <= 50000 and 1 <= ci <= bi - ai+1.
Output
The output contains exactly one integer equal to the minimal size of set Z sharing at least ci elements with interval [ai, bi], for each i=1,2,...,n.
Sample Input
5 3 7 3 8 10 3 6 8 1 1 3 1 10 11 1
Sample Output
6
Source
题目大意:有n个区间,每个区间有3个值,ai,bi,ci代表,在区间[ai,bi]上至少要选择ci个整数点,ci可以在区间内任意取不重复的点
现在要满足所有区间的自身条件,问最少选多少个点
解题思路:
差分约束的思想:可以肯定的是s[bi]-s[ai-1]>=ci; 为什么要ai-1,是因为ai也要选进来
在一个是s[i]-s[i-1]<=1;
s[i]-s[i-1]>=0
所以整理上面三个式子可以得到约束条件:
①s[ai-1]-s[bi] <= -ci
②s[i]-s[i-1] <= 1
③s[i-1]-s[i] <= 0
#include<cstdio>
#include<cstring>
#include<string>
#include<cmath>
#include<cstdlib>
#include<algorithm>
#include<iostream>
#include<queue>
#include<climits>
using namespace std;
int n,minn,maxx,cnt;
bool vis[50010];
int dist[50010];
struct node
{
int to,len,next;
}e[210000];
int head[50010];
void add(int u,int v,int len)
{
e[++cnt].to=v;
e[cnt].len=len;
e[cnt].next=head[u];
head[u]=cnt;
}
void spfa()
{
queue<int> q;
for(int i=minn;i<=maxx;i++)
{
vis[i]=0;
dist[i]=INT_MAX;
}
dist[maxx]=0;
vis[maxx]=1;
q.push(maxx);
while(!q.empty())
{
int x=q.front();
q.pop();
vis[x]=0;
for(int i=head[x];i;i=e[i].next)
{
int v=e[i].to;
int w=e[i].len;
if(dist[v]>dist[x]+w)
{
dist[v]=dist[x]+w;
if(!vis[v])
{
q.push(v);
vis[v]=1;
}
}
}
}
}
int main()
{
scanf("%d",&n);
cnt=1;
minn=INT_MAX,maxx=-INT_MAX;
for(int i=1;i<=n;i++)
{
int a,b,c;
scanf("%d%d%d",&a,&b,&c);
minn=min(a,minn);
maxx=max(maxx,b+1);
add(b+1,a,-c);
}
for(int i=minn;i<maxx;i++)
{
add(i+1,i,0);
add(i,i+1,1);
}
spfa();
printf("%d
",-dist[minn]);
return 0;
}