Deterministic learning automata solutions to the equipartitioning problem

B. John Oommen, Dongxiang Ma · IEEE Transactions on Computers · 1988

Three deterministic learning automata solutions to the problem of equipartitioning are presented. Although the first two are epsilon -optimal, they seem to be practically feasible only when a set of W objects is small. The last solution, which uses a novel learning automaton, demonstrates an excellent partitioning capability. Experimentally, this solution converges an order of magnitude faster than the best known algorithm in the literature.>

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