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题意:给定一个无向图和一个点u,找出若干条边组成一个子图,要求这个子图中u到其他个点的最短距离与在原图中的相等,并且要求子图所有边的权重之和最小,求出最小值并输出子图的边号。
思路:先求一遍最短路,从所有到i点的满足最短路的边中选一条权最小的边。
Java程序
import java.io.PrintStream; import java.util.ArrayList; import java.util.LinkedList; import java.util.List; import java.util.Queue; import java.util.Scanner; public class E545 { private static class Edge { int v; long w; int index; Edge(int v, long w, int index) { this.v = v; this.w = w; this.index = index; } } public static void main(String[] args) { Scanner in = new Scanner(System.in); PrintStream out = System.out; int n = in.nextInt(), m = in.nextInt(); List<Edge>[] graph = new List[n]; for (int i = 0; i < n; i++) { graph[i] = new ArrayList<E545.Edge>(); } for (int i = 1; i <= m; i++) { int v1 = in.nextInt() - 1; int v2 = in.nextInt() - 1; long w = in.nextLong(); graph[v1].add(new Edge(v2, w, i)); graph[v2].add(new Edge(v1, w, i)); } int u = in.nextInt() - 1; Edge[] lastEdge = new Edge[n]; final long[] min = new long[n]; for (int i = 0; i < n; i++) { min[i] = -1; } min[u] = 0; Queue<Integer> q = new LinkedList<Integer>(); q.add(u); while (!q.isEmpty()) { int v = q.poll(); for (Edge edge : graph[v]) { int v1 = edge.v; long min1 = min[v] + edge.w; if ((min[v1] == -1) || (min1 < min[v1]) || (min1 == min[v1] && edge.w < lastEdge[v1].w)) { min[v1] = min1; lastEdge[v1] = edge; q.add(v1); } } } long res = 0; boolean[] f = new boolean[m]; for (int i = 0; i < n; i++) { if (lastEdge[i] != null) { res += lastEdge[i].w; f[lastEdge[i].index - 1] = true; } } out.println(res); StringBuilder s = new StringBuilder(); boolean first = true; for (int i = 0; i < m; i++) { if (f[i]) { if (!first) { s.append(" "); } s.append(i + 1); first = false; } } out.println(s.toString()); in.close(); out.close(); } }
Python代码
import heapq as hq class edge(object): def __init__(self, to, w, nr): self.to = to self.w = w self.nr = nr n, m = map(int, raw_input().split()) adj = [[] for _ in range(n + 1)] for i in range(1, m+1): u, v, c = map(int, raw_input().split()) adj[u].append((v, c, i)) adj[v].append((u, c, i)) root = int(raw_input()) vis = [False] * (n+1) q = [(0, 0, root, 0)] ans = [] tot = 0 while q: d, c, n, e = hq.heappop(q) if vis[n]: continue ans.append(e) tot += c vis[n] = True for v, c, i in adj[n]: if not vis[v]: hq.heappush(q, (d+c, c, v, i)) ans = map(str, ans) print tot print " ".join(ans[1:])
上面的代码都是在codeforces上面抄过来的,自己写不出来。。。。
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原文地址:http://www.cnblogs.com/theskulls/p/4716102.html
