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A Hybrid Approach in the Development of Behavior Based Robotics

Fernando Montes-González, Alberto Ochoa, Luis F. Marín-Urías, Jöns Sánchez Aguilar

发表年份
2010
引用次数
2

摘要

In this paper we present the development of a method that combines the evolutionary robotics approach with action selection. A collection task is set in an arena where a Khepera robot has to collect cylinders that simulate food. Furthermore, two basic motivations, labeled as 'fear' and 'hunger', both affect the selection of the behavioral repertoire. In this paper we propose an initial evolutionary stage where behavioral modules are designed as separate selectable modules. Next, we use evolution for optimizing the motivated selection network employed for behavioral switching. Finally, we compare evolved selection with hand-coded selection, which offers some interesting results that support the use of a hybrid approach in the development of behavior-based robotics.

关键词

Artificial intelligenceSelection (genetic algorithm)Evolutionary roboticsRoboticsAction selectionTask (project management)Computer scienceSet (abstract data type)RepertoireRobot

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