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I am given a graph, G = (V, E), that is positive weighted, directed, and acyclic. I am to design an algorithm that runs in O(k(m + n)) for reporting a k-edge shortest path from s to t. A k-edge shortest path is defined as a path from s to t with k edges and the total weight of the path must also be minimum for all paths from s to t.

Since BFS can't be used alone to find shortest paths (unless the weights are equal), I think that the running time implies using BFS to find paths with k edges. What's throwing me off is the k, as I think it implies performing BFS k times.

My possible idea would be to run a BFS from the source to find all possible k-link paths. By keeping track of the level along the way and storing the total path weight to each node when I add it to my queue, I can find all possible k-link paths and their weights. Obviously, if I encounter the destination at a lower level with lower path weight, there is no k-edge shortest path by definition. What about cases where there are paths with more than k edges that are less total weight? It also is not O(k(m + n)). Any helpful hints would be appreciated.

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Dijkstra's algorithm? –  phs Mar 14 '13 at 3:50

1 Answer 1

Let f[i][j] be the i-link shortest path from s to j, initially we have

f[1][x] = e(s, x);

Then iterate K - 1 times, each round we use f[i][] to compute f[i + 1][], which can be done by

for each node v:
    f[i + 1][v] = INF;
for each edge e[u][v]:
    f[i + 1][v] = min(f[i + 1][v], f[i][u] + e[u][v]);

thus takes O(k(n + m)).

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You also need to keep track of the path itself, not only its cost. A similar array parent[i][j] is needed (i:number of steps, j: destination node). While iterating over the edges (u,v), store the u that results in the minimum f[i+1][v] –  antonis_wrx Oct 2 at 22:09

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