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  • UVA 1025 A Spy in the Metro

    A Spy in the Metro

    Time Limit: 3000ms
    Memory Limit: 131072KB
    This problem will be judged on UVA. Original ID: 1025
    64-bit integer IO format: %lld      Java class name: Main

    Secret agent Maria was sent to Algorithms City to carry out an especially dangerous mission. After several thrilling events we find her in the first station of Algorithms City Metro, examining the time table. The Algorithms City Metro consists of a single line with trains running both ways, so its time table is not complicated.

    Maria has an appointment with a local spy at the last station of Algorithms City Metro. Maria knows that a powerful organization is after her. She also knows that while waiting at a station, she is at great risk of being caught. To hide in a running train is much safer, so she decides to stay in running trains as much as possible, even if this means traveling backward and forward. Maria needs to know a schedule with minimal waiting time at the stations that gets her to the last station in time for her appointment. You must write a program that finds the total waiting time in a best schedule for Maria.

    The Algorithms City Metro system has N stations, consecutively numbered from 1 to N. Trains move in both directions: from the first station to the last station and from the last station back to the first station. The time required for a train to travel between two consecutive stations is fixed since all trains move at the same speed. Trains make a very short stop at each station, which you can ignore for simplicity. Since she is a very fast agent, Maria can always change trains at a station even if the trains involved stop in that station at the same time.

    epsfbox{p2728.eps}

    Input 

    The input file contains several test cases. Each test case consists of seven lines with information as follows.
    Line 1.
    The integer N ( 2$ le$N$ le$50), which is the number of stations.
    Line 2.
    The integer T ( 0$ le$T$ le$200), which is the time of the appointment.
    Line 3.
    N - 1 integers: t1, t2,..., tN - 1 ( 1$ le$ti$ le$70), representing the travel times for the trains between two consecutive stations: t1 represents the travel time between the first two stations, t2the time between the second and the third station, and so on.
    Line 4.
    The integer M1 ( 1$ le$M1$ le$50), representing the number of trains departing from the first station.
    Line 5.
    M1 integers: d1, d2,..., dM1 ( 0$ le$di$ le$250 and di < di + 1), representing the times at which trains depart from the first station.
    Line 6.
    The integer M2 ( 1$ le$M2$ le$50), representing the number of trains departing from the N-th station.
    Line 7.
    M2 integers: e1, e2,..., eM2 ( 0$ le$ei$ le$250 and ei < ei + 1) representing the times at which trains depart from the N-th station.

    The last case is followed by a line containing a single zero.

    Output 

    For each test case, print a line containing the case number (starting with 1) and an integer representing the total waiting time in the stations for a best schedule, or the word `impossible' in case Maria is unable to make the appointment. Use the format of the sample output.

    Sample Input 

    4
55
5 10 15
4
0 5 10 20
4
0 5 10 15
4
18
1 2 3
5
0 3 6 10 12
6
0 3 5 7 12 15
2
30
20
1
20
7
1 3 5 7 11 13 17
0

    Sample Output 

    Case Number 1: 5
Case Number 2: 0
Case Number 3: impossible
     

    Source

    ACM-ICPC World Finals, 2003 - Beverly Hills
     
    解题:dp[i][j]表示当前时间为i,且在j站,到终点最小需要等多长时间。
     
     1 #include <bits/stdc++.h>
 2 using namespace std;
 3 int dp[1000][260],cost[260],n,m1,m2,t;
 4 bool train[1000][260][2];
 5 int main() {
 6     int kase = 1;
 7     while(scanf("%d",&n),n) {
 8         scanf("%d",&t);
 9         for(int i = 2; i <= n; ++i)
10             scanf("%d",cost + i);
11         scanf("%d",&m1);
12         memset(train,false,sizeof train);
13         for(int i = 0,dt; i < m1; ++i) {
14             scanf("%d",&dt);
15             train[dt][1][0] = true;
16             for(int j = 2; j <= n; ++j) {
17                 dt += cost[j];
18                 train[dt][j][0] = true;
19             }
20         }
21         scanf("%d",&m2);
22         for(int i = 0,dt; i < m2; ++i) {
23             scanf("%d",&dt);
24             train[dt][n][1] = true;
25             for(int j = n; j > 1; --j) {
26                 dt += cost[j];
27                 train[dt][j-1][1] = true;
28             }
29         }
30         memset(dp,0x3f,sizeof dp);
31         dp[t][n] = 0;
32         for(int i = t-1; i >= 0; --i) {
33             for(int j = 1; j <= n; ++j) {
34                 dp[i][j] = dp[i+1][j] + 1;
35                 if(j < n && train[i][j][0] && i + cost[j+1] <= t)
36                     dp[i][j] = min(dp[i][j],dp[i+cost[j+1]][j+1]);
37                 if(j > 1 && train[i][j][1] && i + cost[j] <= t)
38                     dp[i][j] = min(dp[i][j],dp[i+cost[j]][j-1]);
39             }
40         }
41         printf("Case Number %d: ",kase++);
42         if(dp[0][1] >= 0x3f3f3f3f) puts("impossible");
43         else printf("%d
",dp[0][1]);
44     }
45     return 0;
46 }
    View Code
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  • 原文地址:https://www.cnblogs.com/crackpotisback/p/4621168.html
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