2018/01/24 by Brian Bittner, Brian A. Bittner, Bittner, Brian A. +4
Biochemistry, Genetics and Molecular Biology · Engineering · Neuroscience · Physics and Astronomy · #Biological Physics (physics.bio-ph) #FOS: Physical sciences #Gene Regulatory Network Analysis #Neural dynamics and brain function #Robotic Locomotion and Control #physics.bio-ph
paper · pdf · doi:10.48550/arxiv.1801.08190
arxiv created 2018/01/24 · openalex publication_date 2018/01/24 · arxiv updated 2018/01/26 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28
The study of motion in animals and robots has been aided by insights from geometric mechanics. In friction dominated systems, a mechanical "connection" can provide a high fidelity mechanical model. The connection is a co-vector (Lie algebra) valued map on the configuration space of the system. As such, empirically estimating a global model of the connection requires a truly exhaustive collection of experiments, and is thus prohibitive on all systems with even a moderate number of degrees of freedom. In this work, insights from data driven oscillator theory enable us to define a framework for estimating a local model of a connection in the vicinity of observed animal and robot gait cycles. The estimates are produced directly from motion capture data of a stochastically perturbed cyclic behavior. We demonstrate the model extraction process under noisy, experiment-like conditions by simulating planar multi-segment serpentine swimmers in a low Reynolds number (viscous-friction) environment. Following this, we assess model accuracy in the presence of observation error. Validating our method's capability to produce accurate models in the presence of simulated system and observational noise motivates its usage on real robotic and biological systems.