Title
An Adaptive Sampling Approach For Evaluating Robot Self-Righting Capabilities
Abstract
To properly evaluate the ability of robots to operate autonomously in the real world, it is necessary to develop methods for quantifying their self-righting capabilities. Here, we improve upon a sampling-based framework for evaluating self-righting capabilities that was previously validated in two dimensions. To apply this framework to realistic robots in three dimensions, we require algorithms capable of scaling to high-dimensional configuration spaces. Therefore, we introduce a novel adaptive sampling approach that biases queries toward the transitional states of the system, thus, identifying the critical transitions of the system using substantially fewer samples. To demonstrate this improvement, we compare our approach to results that were generated via the previous framework and were validated on hardware platforms. Finally, we apply our technique to a high-fidelity three-dimensional model of a US Nave bomb-defusing robot, which was too complex for the previous framework to analyze.
Year
DOI
Venue
2018
10.1109/LRA.2018.2864350
IEEE ROBOTICS AND AUTOMATION LETTERS
Keywords
Field
DocType
Motion and path planning, computational geometry, performance evaluation and benchmarking
Navy,Adaptive sampling,Control engineering,Sampling (statistics),Solid modeling,Engineering,Robot,Scaling,Manifold
Journal
Volume
Issue
ISSN
3
4
2377-3766
Citations 
PageRank 
References 
0
0.34
0
Authors
3
Name
Order
Citations
PageRank
Galen E. Mullins1142.39
Chad C. Kessens2102.30
Satyandra K Gupta368777.11