• BZOJ 1620: [Usaco2008 Nov]Time Management 时间管理



    题目


    1620: [Usaco2008 Nov]Time Management 时间管理

    Time Limit: 5 Sec  Memory Limit: 64 MB
    Submit: 488  Solved: 296
    [Submit][Status]

    Description

    Ever the maturing businessman, Farmer John realizes that he must manage his time effectively. He has N jobs conveniently numbered 1..N (1 <= N <= 1,000) to accomplish (like milking the cows, cleaning the barn, mending the fences, and so on). To manage his time effectively, he has created a list of the jobs that must be finished. Job i requires a certain amount of time T_i (1 <= T_i <= 1,000) to complete and furthermore must be finished by time S_i (1 <= S_i <= 1,000,000). Farmer John starts his day at time t=0 and can only work on one job at a time until it is finished. Even a maturing businessman likes to sleep late; help Farmer John determine the latest he can start working and still finish all the jobs on time.

    N个工作,每个工作其所需时间,及完成的Deadline,问要完成所有工作,最迟要什么时候开始.

    Input

    * Line 1: A single integer: N

    * Lines 2..N+1: Line i+1 contains two space-separated integers: T_i and S_i

    Output

    * Line 1: The latest time Farmer John can start working or -1 if Farmer John cannot finish all the jobs on time.

    Sample Input

    4
    3 5
    8 14
    5 20
    1 16

    INPUT DETAILS:

    Farmer John has 4 jobs to do, which take 3, 8, 5, and 1 units of
    time, respectively, and must be completed by time 5, 14, 20, and
    16, respectively.

    Sample Output

    2

    OUTPUT DETAILS:

    Farmer John must start the first job at time 2. Then he can do
    the second, fourth, and third jobs in that order to finish on time.


    题解


    贪心就可以了,每个工作在deadline或者是已知答案两者更早的那个时间完成就可以了。


    代码


    /*Author:WNJXYK*/
    #include<cstdio>
    #include<iostream>
    #include<cstring>
    #include<string>
    #include<algorithm>
    #include<queue>
    #include<set>
    #include<map>
    using namespace std;
    
    #define LL long long
    #define Inf 2147483647
    #define InfL 10000000000LL
    
    inline void swap(int &x,int &y){int tmp=x;x=y;y=tmp;}
    inline void swap(LL &x,LL &y){LL tmp=x;x=y;y=tmp;}
    inline int remin(int a,int b){if (a<b) return a;return b;}
    inline int remax(int a,int b){if (a>b) return a;return b;}
    inline LL remin(LL a,LL b){if (a<b) return a;return b;}
    inline LL remax(LL a,LL b){if (a>b) return a;return b;}
    
    const int Maxn=50000;
    const int N=100;
    
    int f[Maxn+10];
    int p[N+10];
    int c[N+10];
    int n,h;
    int main(){
    	scanf("%d%d",&n,&h);
    	for (int i=1;i<=n;i++) scanf("%d%d",&p[i],&c[i]);
    	memset(f,127,sizeof(f));
    	f[0]=0;
    	for (int i=1;i<=n;i++){
    		for (int v=0;v<=h;v++){
    			f[remin(v+p[i],h)]=remin(f[remin(v+p[i],h)],f[v]+c[i]);
    		}
    	}
    	printf("%d
    ",f[h]);
    	return 0;
    }
    


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  • 原文地址:https://www.cnblogs.com/WNJXYK/p/4063915.html
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