Automated Acquisition of Anisotropic Friction
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This archive contains data for the ICRA 2019 paper
Automated Acquisition ofAnisotropic Friction
By
Keno Dressel, Kenny Erleben, Paul Kry and Sheldon Andrews
Abstract: Automated acquisition of friction data is an interesting approach to more successfully bridge the reality gap in simulation than conventional mathematical models. To advance this area of research, we present a novel inexpensive computer vision platform as a solution for collecting and processing friction data, and we make available the open source software and data sets collected with our vision robotic approach. This paper is focused on gathering data on anisotropic static friction behavior as this is ideal for inexpensive vision approach we propose. The data set and experimental setup provide a solid foundation for a wider robotics simulation community to conduct their own experiments.
提供机构:
University of Copenhagen
创建时间:
2019-04-04



