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December 1, 2008263 citations

Movement reproduction and obstacle avoidance with dynamic movement primitives and potential fields

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DPDae-Hyung ParkUniversity of Southern CaliforniaHHH. HoffmannTechnische Universität DresdenPPP. PastorUniversidad de Zaragoza

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Abstract

Robots in a human environment need to be compliant. This compliance requires that a preplanned movement can be adapted to an obstacle that may be moving or appearing unexpectedly. Here, we present a general framework for movement generation and mid-flight adaptation to obstacles. For robust motion generation, Ijspeert et al developed the framework of dynamic movement primitives 1, 2, 3, 4, which represent a demonstrated movement with a set of differential equations. These equations allow adding a perturbing force without sacrificing stability of the desired movement. We extend this framework such that arbitrary movements in end-effector space can be represented - which was not possible before. Furthermore, we include obstacle avoidance by adding to the equations of motion a repellent force - a gradient of a potential field centered around the obstacle. In addition, this article compares different potential fields and shows how to avoid obstacle-link collisions within this framework. We demonstrate the abilities of our approach in simulations and with an anthropomorphic robot arm.

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Cite This Study

Park et al. (2008) studied this question.

synapsesocial.com/papers/6a0a580b128059c31d1168eahttps://doi.org/10.1109/ichr.2008.4755937
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Also Consider

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  1. 1Obstacle Avoidance for Kinematically Redundant Manipulators in Dynamically Varying Environments1985 · 1,005 citations
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