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Evolutionary Learning Strategy using Bug-Based Search

Conference Paper Genetic Algorithms Artificial Intelligence

Abstract

We introduce a new approach to GA (Genetic Algorithms) based problem solving. Earlier GAs did not contain local search (i. e. hill climbing) mechanisms, which led to optimization difficulties, especially in higher dimensions. To overcome such difficulties, we introduce a "bug-based" search strategy, and implement a system called BUGS2. The ideas behind this new approach are derived from biologically realistic bug behaviors. These ideas were confirmed empirically by applying them to some optimization and computer vision problems.

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Context

Venue
International Joint Conference on Artificial Intelligence
Archive span
1969-2025
Indexed papers
14525
Paper id
762990579099040131
v2026.09.13