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Evolving modular genetic regulatory networks

Josh Bongard

Year
2003
Citations
185

Abstract

We introduce a system that combines ontogenetic development and artificial evolution to automatically design robots in a physics-based, virtual environment. Through lesion experiments on the evolved agents, we demonstrate that the evolved genetic regulatory networks from successful evolutionary runs are more modular than those obtained from unsuccessful runs.

Keywords

Modular designComputer scienceSelf-reconfiguring modular robotRobotArtificial intelligenceGenetic algorithmEvolutionary roboticsMachine learningMobile robotProgramming language

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