HDU 6071 同余最短路 spfa
阿新 • • 發佈:2017-08-05
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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 , you can just run to pi−1 or pi+1(p1 is also next to p4). You can run more distance between two adjacent checkpoints, but only the distance saved at the system will be counted.
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