HDU 6071 同余最短路 spfa
阿新 • • 發佈:2017-08-05
res targe star pragma std sca nts push bits
There are 4 checkpoints in the campus, indexed as p1,p2,p3 and p4. Every time you pass a checkpoint, you should swipe your card, then the distance between this checkpoint and the last checkpoint you passed will be added to your total distance.
The system regards these 4 checkpoints as a circle. When you are at checkpoint pi
Checkpoint p2 is the nearest to the dormitory, Little Q always starts and ends running at this checkpoint. Please write a program to help Little Q find the shortest path whose total distance is not less than K
In each test case, there are 5 integers K,d1,2,d2,3,d3,4,d4,1(1≤K≤1018,1≤d≤30000), denoting the required distance and the distance between every two adjacent checkpoints.
Lazy Running
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 524288/524288 K (Java/Others)
Total Submission(s): 657 Accepted Submission(s): 284
There are 4 checkpoints in the campus, indexed as p1,p2,p3 and p4. Every time you pass a checkpoint, you should swipe your card, then the distance between this checkpoint and the last checkpoint you passed will be added to your total distance.
The system regards these 4 checkpoints as a circle. When you are at checkpoint pi
Checkpoint p2 is the nearest to the dormitory, Little Q always starts and ends running at this checkpoint. Please write a program to help Little Q find the shortest path whose total distance is not less than K
Input The first line of the input contains an integer T(1≤T≤15), denoting the number of test cases.
In each test case, there are 5 integers K,d1,2,d2,3,d3,4,d4,1(1≤K≤1018,1≤d≤30000), denoting the required distance and the distance between every two adjacent checkpoints.
Output For each test case, print a single line containing an integer, denoting the minimum distance.
Sample Input 1 2000 600 650 535 380
Sample Output 2165 Hint The best path is 2-1-4-3-2.
Source 2017 Multi-University Training Contest - Team 4 題意:求從2點回到2點的路徑距離和大於等與K的最小值 題解:叉姐的分析
1 #pragma comment(linker, "/STACK:102400000,102400000") 2 #include <bits/stdc++.h> 3 #include <cstdlib> 4 #include <cstdio> 5 #include <iostream> 6 #include <cstdlib> 7 #include <cstring> 8 #include <algorithm> 9 #include <cmath> 10 #include <cctype> 11 #include <map> 12 #include <set> 13 #include <queue> 14 #include <bitset> 15 #include <string> 16 #include <complex> 17 #define LL long long 18 #define mod 1000000007 19 using namespace std; 20 LL x,d12,d23,d34,d41; 21 int t; 22 struct node{ 23 LL st,we,dis; 24 }exm,ok; 25 int vis[5][60004]; 26 int dp[5][60004]; 27 LL d[5][5]; 28 LL bew; 29 queue<node> q; 30 void dij() 31 { 32 while(!q.empty()) 33 q.pop(); 34 exm.st=2; 35 exm.we=0; 36 exm.dis=0; 37 q.push(exm); 38 dp[2][0]=0; 39 vis[exm.st][exm.we]=1; 40 while(!q.empty()){ 41 exm=q.front(); 42 q.pop(); 43 vis[exm.st][exm.we]=0; 44 LL now,ww; 45 now=(exm.st)%4+1; 46 ww=(exm.dis+d[exm.st][now])%(2*bew); 47 if(dp[now][ww]==-1||dp[now][ww]>=exm.dis+d[exm.st][now]){ 48 dp[now][ww]=exm.dis+d[exm.st][now]; 49 if(vis[now][ww]==0){ 50 vis[now][ww]=1; 51 ok.st=now; 52 ok.we=ww; 53 ok.dis=exm.dis+d[exm.st][now]; 54 q.push(ok); 55 } 56 } 57 now=(exm.st-1); 58 if(now==0) 59 now=4; 60 ww=(exm.dis+d[exm.st][now])%(2*bew); 61 if(dp[now][ww]==-1||dp[now][ww]>=exm.dis+d[exm.st][now]){ 62 dp[now][ww]=exm.dis+d[exm.st][now]; 63 if(vis[now][ww]==0){ 64 vis[now][ww]=1; 65 ok.st=now; 66 ok.we=ww; 67 ok.dis=exm.dis+d[exm.st][now]; 68 q.push(ok); 69 } 70 } 71 } 72 73 } 74 int main() 75 { 76 scanf("%d",&t); 77 for(int i=1;i<=t;i++){ 78 memset(vis,0,sizeof(vis)); 79 memset(dp,-1,sizeof(dp)); 80 scanf("%lld %lld %lld %lld %lld",&x,&d[1][2],&d[2][3],&d[3][4],&d[4][1]); 81 d[2][1]=d[1][2]; 82 d[3][2]=d[2][3]; 83 d[4][3]=d[3][4]; 84 d[1][4]=d[4][1]; 85 bew=min(d[2][1],d[2][3]); 86 dij(); 87 LL ans=1e18+1; 88 for(LL j=0;j<2*bew;j++){ 89 if(dp[2][j]==-1) 90 continue; 91 LL zhong=(max(0LL,x-dp[2][j]))/(2*bew); 92 if(dp[2][j]+zhong*2*bew<x) 93 zhong++; 94 ans=min(ans,dp[2][j]+zhong*2*bew); 95 } 96 printf("%lld\n",ans); 97 } 98 return 0; 99 }
HDU 6071 同余最短路 spfa