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Representation and constrained planning of manipulation strategies in the context of Programming by Demonstration

Rainer Jäkel, Sven R. Schmidt-Rohr, Martin Lösch, Rüdiger Dillmann

发表年份
2010
引用次数
41

摘要

In Programming by Demonstration, a flexible representation of manipulation motions is necessary to learn and generalize from human demonstrations. In contrast to subsymbolic representations of trajectories, e.g. based on a Gaussian Mixture Model, a partially symbolic representation of manipulation strategies based on a temporal satisfaction problem with domain constraints is developed. By using constrained motion planning and a geometric constraint representation, generalization to different robot systems and new environments is achieved. In order to plan learned manipulation strategies the RRT-based algorithm by Stilman et al. is extended to consider, that multiple sets of constraints are possible during the extension of the search tree.

关键词

Representation (politics)Constraint satisfactionConstraint programmingComputer scienceConstraint satisfaction problemContext (archaeology)Constraint (computer-aided design)GeneralizationDomain (mathematical analysis)Extension (predicate logic)

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