Task Schedule

Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 6802    Accepted Submission(s): 2124

Problem Description
Our geometry princess XMM has stoped her study in computational geometry to concentrate on her newly opened factory. Her factory has introduced M new machines in order to process the coming N tasks. For the i-th task, the factory has to start processing it at or after day Si, process it for Pi days, and finish the task before or at day Ei. A machine can only work on one task at a time, and each task can be processed by at most one machine at a time. However, a task can be interrupted and processed on different machines on different days. 
Now she wonders whether he has a feasible schedule to finish all the tasks in time. She turns to you for help.
 
Input
On the first line comes an integer T(T<=20), indicating the number of test cases.

You are given two integer N(N<=500) and M(M<=200) on the first line of each test case. Then on each of next N lines are three integers Pi, Si and Ei (1<=Pi, Si, Ei<=500), which have the meaning described in the description. It is guaranteed that in a feasible schedule every task that can be finished will be done before or at its end day.

 
Output
For each test case, print “Case x: ” first, where x is the case number. If there exists a feasible schedule to finish all the tasks, print “Yes”, otherwise print “No”.

Print a blank line after each test case.

 
Sample Input
2
4 3
1 3 5
1 1 4
2 3 7
3 5 9

2 2
2 1 3
1 2 2

 
Sample Output
Case 1: Yes
 
Case 2: Yes
 
题意:给N个任务,M台机器。每个任务有最早才能开始做的时间S,deadline E,和持续工作的时间P。每个任务可以分段进行,但是在同一时刻,一台机器最多只能执行一个任务. 问存不存在可行的工作时间。
#include <iostream>

#include <cstdio>

#include <cstring>

#include <cstdlib>

#include <cmath>

#include <vector>

#include <queue>

#include <map>

#include <algorithm>

#include <set>

using namespace std;

#define MM(a,b) memset(a,b,sizeof(a))

typedef long long ll;

typedef unsigned long long ULL;

const int mod = 1000000007;

const double eps = 1e-10;

const int inf = 0x3f3f3f3f;

const int big=50000;

int max(int a,int b) {return a>b?a:b;};

int min(int a,int b) {return a<b?a:b;};

struct edge{

   int to,cap,rev;

};

vector<edge> G[1010];

map<string,int> mp;

int n,m,k,daymax,level[1010],iter[1010];

int p[1010],s[1010],e[1010],sum;

void add_edge(int u,int v,int cap)

{

    G[u].push_back(edge{v,cap,G[v].size()});

    G[v].push_back(edge{u,0,G[u].size()-1});

}

void bfs(int s)

{

    queue<int> q;

    q.push(s);

    level[s]=1;

    while(q.size())

    {

        int now=q.front();q.pop();

        for(int i=0;i<G[now].size();i++)

        if(G[now][i].cap>0)

        {

            edge e=G[now][i];

            if(level[e.to]<0)

              {

                  level[e.to]=level[now]+1;

                  q.push(e.to);

              }

        }

    }

}

int dfs(int s,int t,int minn)

{

    if(s==t)

        return minn;

    for(int &i=iter[s];i<G[s].size();i++)

    {

        edge &e=G[s][i];

        if(level[e.to]>level[s]&&e.cap>0)

        {

            int k=dfs(e.to,t,min(minn,e.cap));

            if(k>0)

             {

                 e.cap-=k;

                 G[e.to][e.rev].cap+=k;

                 return k;

             }

        }

    }

    return 0;

}

int max_flow(int s,int t)

{

    int ans=0,temp;

    for(;;)

    {

        memset(level,-1,sizeof(level));

        bfs(s);

        if(level[t]<0)

            return ans;

        memset(iter,0,sizeof(iter));

        while((temp=dfs(s,t,inf))>0)

            ans+=temp;

    }

    return ans;

}

void build()

{

    for(int i=0;i<=n+daymax+1;i++) G[i].clear();

    for(int i=1;i<=n;i++)

       add_edge(0,i,p[i]);

    for(int i=n+1;i<=n+daymax;i++)

       add_edge(i,n+daymax+1,m);

    for(int i=1;i<=n;i++)

        for(int j=1;j<=daymax;j++)

        if(j>=s[i]&&j<=e[i])

            add_edge(i,j+n,1);

}

int main()

{

    int cas,kk=0;

    scanf("%d",&cas);

    while(cas--)

    {

        daymax=0;sum=0;

        scanf("%d %d",&n,&m);

        for(int i=1;i<=n;i++)

                {

                    scanf("%d %d %d",&p[i],&s[i],&e[i]);

                    if(e[i]>daymax) daymax=e[i];

                    sum+=p[i];

                }

        build();

        printf("Case %d: ",++kk);

        if(max_flow(0,n+daymax+1)==sum)

           printf("Yes\n");//刚开始输出YES,wa了好久,剁手了,以后输出格式都直接粘贴!

        else printf("No\n");

        printf("\n");

    }

    return 0;

}

  体会建图思想,刚开始我想的是建立一个天数与机器的二元组,然后向汇点连接一条容量为1的边,但是算下来就是会超时了,,因为点太多了,,,其实只要将天数向汇点连接容量为仪器数量的边就好了,这样就控制了仪器的使用数量,然后就是任务向仪器连边,跑跑最大流就可以了

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