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Please refer to the following page for Bellman ford algorithm (it shows an e.g). http://compprog.wordpress.com/2007/11/29/one-source-shortest-path-the-bellman-ford-algorithm

I still don’t get it. In the first loop iteration of the outer loop, let’s say by the example, u first modify edge 1->2 and edge 1->4, what’s the problem in relaxing the edge 2->3, 2->5, 4->3, 4->5,in the same step, since we have d[2] and d[4].

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1 Answer 1

This problem magically disappears if you use a sligtly different version of Bellman-Ford:

set toRelax = {initial_vertex}
while toRelax is not empty:
    u = remove a vertex from toRelax
    for each neighbour v of u:
       if we can relax u-v:
          relax u-v
          add v to toRelax

Notice how each "step" now involves a single vertex! Things being done in the "same step" or not are just an artifact of the specific implementation you use and don't really change the algorithm in the end.

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