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Shouldn't it be E*(logV)? Reference: Dijkstra's algorithm

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Please explain why you think this algorithm should be E(logV). –  Luiggi Mendoza Jun 4 '13 at 2:52
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Yeah sorry, Dijkstra made a typo. –  Mehrdad Jun 4 '13 at 2:57
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Common implementations are O(|E| log |V|). You need a priority queue that supports constant-time decrease-key operations to get the better asymptotic bound. Your link points this out. –  tmyklebu Jun 4 '13 at 3:13

2 Answers 2

The worst case time complexity of Dijkstra's algorithm depends on how it's implemented:

Simple Implementation: O((E * c1) + (V * V)) = O(E + V^2) ~ O(V^2)

Using Fibonacci Heap: O((E * c2) + (V * log V)) = O(E + V log V) ~ O(V log V)

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In the worst case E > V so the complexity is E + VlogV which can be replaces with E+ElogV that as for complexity is ElogV is that what you mean ?

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