Smooth enlargement of human standing sway by instability due to weak reaction floor and noise.

R Soc Open Sci

Department of Aeronautics and Astronautics, Kyoto University, Kyoto daigaku-Katsura, Nishikyo-ku, Kyoto 615-8540, Japan; JST, CREST, 5 Sanbancho, Chiyoda-ku, Tokyo 102-0075, Japan.

Published: January 2016

AI Article Synopsis

  • Human standing involves natural body sway, which is observed to be greater than what simple noise would suggest, and is affected by neurological disorders.
  • The study theorizes that this substantial sway arises from intermittent nonlinear control, which can undergo transitions influenced by environmental stability, potentially explaining changes seen in those with neurological issues.
  • Mathematical modeling reveals that such nonlinear control can demonstrate Hopf bifurcation and that noise may help moderate sway variations, aligning model predictions with real-life observations of human sway on different floor types.

Article Abstract

Human quiet standing is accompanied by body sway. The amplitude of this body sway is known to be larger than would be predicted from simple noise effects, and sway characteristics are changed by neurological disorders. This large sway is thought to arise from nonlinear control with prolonged periods of no control (intermittent control), and a nonlinear control system of this kind has been predicted to exhibit bifurcation. The presence of stability-dependent transition enables dynamic reaction that depends on the stability of the environment, and can explain the change in sway characteristics that accompanies some neurological disorders. This research analyses the characteristics of a system model that induces transition, and discusses whether human standing reflects such a mechanism. In mathematical analysis of system models, (intermittent control-like) nonlinear control with integral control is shown to exhibit Hopf bifurcation. Moreover, from the analytical solution of the system model with noise, noise is shown to work to smooth the enlargement of sway around the bifurcation point. This solution is compared with measured human standing sway on floors with different stabilities. By quantitatively comparing the control parameters between human observation and model prediction, enlargement of sway is shown to appear as predicted by the model analysis.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4736941PMC
http://dx.doi.org/10.1098/rsos.150570DOI Listing

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