码迷,mamicode.com
首页 > 其他好文 > 详细

UVA 590 二十一 Always on the run

时间:2015-08-30 22:45:02      阅读:185      评论:0      收藏:0      [点我收藏+]

标签:

 Always on the run
Time Limit:3000MS     Memory Limit:0KB     64bit IO Format:%lld & %llu
Appoint description: 

Description

技术分享
 

Screeching tires. Searching lights. Wailing sirens. Police cars everywhere. Trisha Quickfinger did it again! Stealing the `Mona Lisa‘ had been more difficult than planned, but being the world‘s best art thief means expecting the unexpected. So here she is, the wrapped frame tucked firmly under her arm, running to catch the northbound metro to Charles-de-Gaulle airport.

But even more important than actually stealing the painting is to shake off the police that will soon be following her. Trisha‘s plan is simple: for several days she will be flying from one city to another, making one flight per day. When she is reasonably sure that the police has lost her trail, she will fly to Atlanta and meet her `customer‘ (known only as Mr. P.) to deliver the painting.

Her plan is complicated by the fact that nowadays, even when you are stealing expensive art, you have to watch your spending budget. Trisha therefore wants to spend the least money possible on her escape flights. This is not easy, since airlines prices and flight availability vary from day to day. The price and availability of an airline connection depends on the two cities involved and the day of travel. Every pair of cities has a `flight schedule‘ which repeats every few days. The length of the period may be different for each pair of cities and for each direction.

Although Trisha is a good at stealing paintings, she easily gets confused when booking airline flights. This is where you come in.

 

Input 

The input file contains the descriptions of several scenarios in which Trisha tries to escape. Every description starts with a line containing two integers n and kn is the number of cities through which Trisha‘s escape may take her, and k is the number of flights she will take. The cities are numbered 技术分享, where 1 is Paris, her starting point, and n is Atlanta, her final destination. The numbers will satisfy 技术分享 and 技术分享.

Next you are given n(n - 1) flight schedules, one per line, describing the connection between every possible pair of cities. The first n - 1 flight schedules correspond to the flights from city 1 to all other cities ( 技术分享), the next n - 1 lines to those from city 2 to all others ( 技术分享), and so on.

The description of the flight schedule itself starts with an integer d, the length of the period in days, with 技术分享. Following this ared non-negative integers, representing the cost of the flight between the two cities on days 技术分享. A cost of 0 means that there is no flight between the two cities on that day.

So, for example, the flight schedule ``3 75 0 80‘‘ means that on the first day the flight costs 75, on the second day there is no flight, on the third day it costs 80, and then the cycle repeats: on the fourth day the flight costs 75, there is no flight on the fifth day, etc.

The input is terminated by a scenario having n = k = 0.

 

Output 

For each scenario in the input, first output the number of the scenario, as shown in the sample output. If it is possible for Trisha to travel kdays, starting in city 1, each day flying to a different city than the day before, and finally (after k days) arriving in city n, then print `` The best flight costs x.‘‘, where x is the least amount that the k flights can cost.

If it is not possible to travel in such a way, print ``No flight possible.‘‘.

Print a blank line after each scenario.

 

Sample Input 

3 6
2 130 150
3 75 0 80
7 120 110 0 100 110 120 0
4 60 70 60 50
3 0 135 140
2 70 80
2 3
2 0 70
1 80
0 0

 

Sample Output 

Scenario #1
The best flight costs 460.

Scenario #2
No flight possible.

 

 


Miguel A. Revilla
1998-03-10
技术分享
 1 #include <stdio.h>
 2 #include <string.h>
 3 #include <algorithm>
 4 using namespace std;
 5 
 6 int dp[1005][12];
 7 int fly[12][12][35];
 8 int main()
 9 {
10     int n,k,ca=1;
11     int i,j,l;
12     while(scanf("%d %d",&n,&k)!=EOF)
13     {
14         if(n==0 && k==0)
15             break;
16         memset(fly,0,sizeof(fly));
17         for(i=1;i<=n;i++)
18         {
19             for(j=1;j<=n;j++)
20             {
21                 if(j==i)
22                     continue;
23                 scanf("%d",&fly[i][j][0]);
24                 for(l=1;l<=fly[i][j][0];l++)
25                 {
26                     scanf("%d",&fly[i][j][l]);
27                 }
28             }
29         }
30 
31         /*for(i=1;i<=n;i++)
32         {
33             for(j=1;j<=n;j++)
34             {
35                 printf("%d:",fly[i][j][0]);
36                 for(l=1;l<=k;l++)
37                     printf("%d ",fly[i][j][l]);
38                 printf("\n");
39             }
40             printf("\n");
41         }*/
42         
43         memset(dp,-1,sizeof(dp));
44         dp[0][1]=0;
45         for(l=1;l<=k;l++)
46         {
47             for(i=1;i<=n;i++)
48             {
49                 if(dp[l-1][i]!=-1)
50                 {
51                     for(j=1;j<=n;j++)
52                     {
53                         if(fly[i][j][0]==0)
54                             continue;
55                         int ll;
56                         if(l%(fly[i][j][0])==0)
57                             ll=fly[i][j][0];
58                         else
59                             ll=l%fly[i][j][0];
60                         if(fly[i][j][ll]!=0)
61                         {
62                             if(dp[l][j]==-1)
63                                 dp[l][j]=dp[l-1][i]+fly[i][j][ll];
64                             else
65                                 dp[l][j]=min(dp[l][j],dp[l-1][i]+fly[i][j][ll]);
66                         }
67                     }
68                 }
69             }
70         }
71 
72         if(dp[k][n]!=-1)
73             printf("Scenario #%d\nThe best flight costs %d.\n\n",ca++,dp[k][n]);
74         else
75             printf("Scenario #%d\nNo flight possible.\n\n",ca++);
76     }
77     return 0;
78 }
View Code

 

UVA 590 二十一 Always on the run

标签:

原文地址:http://www.cnblogs.com/cyd308/p/4771623.html

(0)
(0)
   
举报
评论 一句话评论(0
登录后才能评论!
© 2014 mamicode.com 版权所有  联系我们:gaon5@hotmail.com
迷上了代码!