POJ 1984 Navigation Nightmare (数据结构-并查集)
Navigation Nightmare
Description
Farmer John‘s pastoral neighborhood has N farms (2 <= N <= 40,000), usually numbered/labeled 1..N. A series of M (1 <= M < 40,000) vertical and horizontal roads each of varying lengths (1 <= length <= 1000) connect the farms. A map of these farms might look
something like the illustration below in which farms are labeled F1..F7 for clarity and lengths between connected farms are shown as (n):
F1 --- (13) ---- F6 --- (9) ----- F3 | | (3) | | (7) F4 --- (20) -------- F2 | | | (2) F5 | F7 Being an ASCII diagram, it is not precisely to scale, of course. Each farm can connect directly to at most four other farms via roads that lead exactly north, south, east, and/or west. Moreover, farms are only located at the endpoints of roads, and some farm can be found at every endpoint of every road. No two roads cross, and precisely one path (sequence of roads) links every pair of farms. FJ lost his paper copy of the farm map and he wants to reconstruct it from backup information on his computer. This data contains lines like the following, one for every road: There is a road of length 10 running north from Farm #23 to Farm #17 There is a road of length 7 running east from Farm #1 to Farm #17 ... As FJ is retrieving this data, he is occasionally interrupted by questions such as the following that he receives from his navigationally-challenged neighbor, farmer Bob: What is the Manhattan distance between farms #1 and #23? FJ answers Bob, when he can (sometimes he doesn‘t yet have enough data yet). In the example above, the answer would be 17, since Bob wants to know the "Manhattan" distance between the pair of farms. The Manhattan distance between two points (x1,y1) and (x2,y2) is just |x1-x2| + |y1-y2| (which is the distance a taxicab in a large city must travel over city streets in a perfect grid to connect two x,y points). When Bob asks about a particular pair of farms, FJ might not yet have enough information to deduce the distance between them; in this case, FJ apologizes profusely and replies with "-1". Input * Line 1: Two space-separated integers: N and M * Lines 2..M+1: Each line contains four space-separated entities, F1, F2, L, and D that describe a road. F1 and F2 are numbers of two farms connected by a road, L is its length, and D is a character that is either ‘N‘, ‘E‘, ‘S‘, or ‘W‘ giving the direction of the road from F1 to F2. * Line M+2: A single integer, K (1 <= K <= 10,000), the number of FB‘s queries * Lines M+3..M+K+2: Each line corresponds to a query from Farmer Bob and contains three space-separated integers: F1, F2, and I. F1 and F2 are numbers of the two farms in the query and I is the index (1 <= I <= M) in the data after which Bob asks the query. Data index 1 is on line 2 of the input data, and so on. Output * Lines 1..K: One integer per line, the response to each of Bob‘s queries. Each line should contain either a distance measurement or -1, if it is impossible to determine the appropriate distance. Sample Input 7 6 1 6 13 E 6 3 9 E 3 5 7 S 4 1 3 N 2 4 20 W 4 7 2 S 3 1 6 1 1 4 3 2 6 6 Sample Output 13 -1 10 Hint
At time 1, FJ knows the distance between 1 and 6 is 13.
At time 3, the distance between 1 and 4 is still unknown. At the end, location 6 is 3 units west and 7 north of 2, so the distance is 10. Source |
题目大意:
给定n个城市,m条边告诉你城市间的相对距离,接下来q组询问,问你在第几条边添加后两城市的距离。
解题思路:
解题思路:用离线处理,再用并查集维护每个城市到父亲城市的距离。
#include <iostream> #include <cstdio> #include <algorithm> using namespace std; const int maxn=41000; struct edge{ int u,v,dis; char ch; }e[maxn]; struct node{ int u,v,cnt,id,ans; }a[maxn]; int n,m,q; int father[maxn],offx[maxn],offy[maxn]; bool cmp1(node x,node y){ return x.cnt<y.cnt; } bool cmp2(node x,node y){ return x.id<y.id; } void input(){ scanf("%d%d",&n,&m); for(int i=0;i<=n;i++){ father[i]=i; offx[i]=offy[i]=0; } for(int i=0;i<m;i++){ scanf("%d%d%d %c",&e[i].u,&e[i].v,&e[i].dis,&e[i].ch); } scanf("%d",&q); for(int i=0;i<q;i++){ scanf("%d%d%d",&a[i].u,&a[i].v,&a[i].cnt); a[i].id=i; } sort(a,a+q,cmp1); } int find(int x){ if(father[x]!=x){ int tmp=father[x]; father[x]=find(father[x]); offx[x]+=offx[tmp]; offy[x]+=offy[tmp]; } return father[x]; } void combine(int x,int y,int dis,char ch){ int fx=find(x); int fy=find(y); father[fy]=fx; int offx0=offx[x]-offx[y]; int offy0=offy[x]-offy[y]; //cout<<fy<<"->"<<fx; if(ch=='N') offy0+=dis; else if(ch=='S') offy0-=dis; else if(ch=='E') offx0+=dis; else offx0-=dis; //cout<<":("<<offx[fy]<<","<<offy[fy]<<")"<<endl; offx[fy]=offx0; offy[fy]=offy0; //cout<<":("<<offx[fy]<<","<<offy[fy]<<")"<<endl; } void solve(){ int k=0; for(int i=0;i<q;i++){ for(;k<a[i].cnt;k++){ if(find(e[k].u)!=find(e[k].v)){ combine(e[k].u,e[k].v,e[k].dis,e[k].ch); } } if( find(a[i].u)!=find(a[i].v) ) a[i].ans=-1; else{ int ans=abs(offx[a[i].u]-offx[a[i].v])+abs(offy[a[i].u]-offy[a[i].v]); a[i].ans=ans; } } sort(a,a+q,cmp2); for(int i=0;i<q;i++){ printf("%d\n",a[i].ans); } } int main(){ input(); solve(); return 0; }
郑重声明:本站内容如果来自互联网及其他传播媒体,其版权均属原媒体及文章作者所有。转载目的在于传递更多信息及用于网络分享,并不代表本站赞同其观点和对其真实性负责,也不构成任何其他建议。