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Behavior Trees for Smart Robots Practical Guidelines for Robot Software Development

Eric Dortmans, Teade Punter

Year
2022
Citations
10
Access
Open access

Abstract

Behavior Trees are a promising approach to model the autonomous behaviour of robots in dynamic environments. Behavior Trees represent action selection decisions as a tree of decision nodes. The hierarchy of these decision nodes provides the planning of actions of the robot including its reactions on exceptions. Behavior Trees enable flexible planning and replanning of robot behavior while supporting better maintainable decision-making than traditional Finite State Machines. This paper presents an overview of lessons, which we have learned when applying Behavior Trees to various autonomous robots. We present these lessons as a sequence of steps that is meant to support robot software practitioners to develop their systems.

Keywords

Computer scienceRobotHierarchyAction selectionDecision treeTree (set theory)SoftwareArtificial intelligenceHuman–computer interactionBehavior-based robotics

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