Bellman-Ford Algorithm: Difference between revisions

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[[Category:Algorithms]]
[[Category:Algorithms]]
{{Infobox Algorithm|runtime=O(V^2 + E)}}
{{Infobox Algorithm
|runtime=<math>O(V^2 + E)</math>
|class=[[Dynamic Programming]] <br> [[Graph Algorithms]] <br> [[Shortest Path Problem]]
}}
= Approach: dynamic programming =
= Approach: dynamic programming =
All shortest path must have <math> \leq |V| - 1 </math> edges. If this condition is not satisfied, there is a cycle in in the path, and therefore it is not the shortest.
All shortest path must have <math> \leq |V| - 1 </math> edges. If this condition is not satisfied, there is a cycle in in the path, and therefore it is not the shortest.

Revision as of 00:05, 6 March 2024

Approach: dynamic programming

All shortest path must have edges. If this condition is not satisfied, there is a cycle in in the path, and therefore it is not the shortest.

Recurrence

Let OPT(n-1, a) be the length of the shortest path from source node to node with at most edges.

The idea is to add one edge at a time, seeing if the edge should be included in the shortest path.

If we don't add the edge, the length is OPT(n - 2, a)

If we add the edge, the length would be OPT(n - 2, b) + w(b, a)

OPT(a, n-1) = min(w(b,a) + OPT(n-1, b) for all (b, a) in E)

Implementation

Time complexity:

  • Sparse:
  • Dense:
// G: Graph with vertices (V) and edges (E)
// w[e]: weight of edge e
// S: starting node
Bellman-Ford(G, w, S)
    V, E = G
    pi[v] = null for all v  // traceback
    
    // initialize all shortest path algo
    d[v] = infty for all v
    d[s] = 0
    for i from 1 to |V| - 1:
        for all (u,v) in E
            if d[v] > d[u] + w(u, v):
                d[v] = d[u] + w(u,v)
                pi[v] = u;
    
    for all (u, v) in E:
        if d[v] > d[u] + w(u, v):
            // has negative cycle
            return false

This accounts for negative edges but not negative cycles. Bellman Ford can detect it by running an extra time, since if there is a negative cycle, the run time will improve.