Literature DB >> 18067383

Dynamic stability of passive dynamic walking on an irregular surface.

Jimmy Li-Shin Su1, Jonathan B Dingwell.   

Abstract

Falls that occur during walking are a significant health problem. One of the greatest impediments to solve this problem is that there is no single obviously "correct" way to quantify walking stability. While many people use variability as a proxy for stability, measures of variability do not quantify how the locomotor system responds to perturbations. The purpose of this study was to determine how changes in walking surface variability affect changes in both locomotor variability and stability. We modified an irreducibly simple model of walking to apply random perturbations that simulated walking over an irregular surface. Because the model's global basin of attraction remained fixed, increasing the amplitude of the applied perturbations directly increased the risk of falling in the model. We generated ten simulations of 300 consecutive strides of walking at each of six perturbation amplitudes ranging from zero (i.e., a smooth continuous surface) up to the maximum level the model could tolerate without falling over. Orbital stability defines how a system responds to small (i.e., "local") perturbations from one cycle to the next and was quantified by calculating the maximum Floquet multipliers for the model. Local stability defines how a system responds to similar perturbations in real time and was quantified by calculating short-term and long-term local exponential rates of divergence for the model. As perturbation amplitudes increased, no changes were seen in orbital stability (r(2)=2.43%; p=0.280) or long-term local instability (r(2)=1.0%; p=0.441). These measures essentially reflected the fact that the model never actually "fell" during any of our simulations. Conversely, the variability of the walker's kinematics increased exponentially (r(2)>or=99.6%; p<0.001) and short-term local instability increased linearly (r(2)=88.1%; p<0.001). These measures thus predicted the increased risk of falling exhibited by the model. For all simulated conditions, the walker remained orbitally stable, while exhibiting substantial local instability. This was because very small initial perturbations diverged away from the limit cycle, while larger initial perturbations converged toward the limit cycle. These results provide insight into how these different proposed measures of walking stability are related to each other and to risk of falling.

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Mesh:

Year:  2007        PMID: 18067383     DOI: 10.1115/1.2800760

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  30 in total

1.  Walking variability during continuous pseudo-random oscillations of the support surface and visual field.

Authors:  Patricia M McAndrew; Jonathan B Dingwell; Jason M Wilken
Journal:  J Biomech       Date:  2010-03-26       Impact factor: 2.712

2.  Dynamic stability of human walking in visually and mechanically destabilizing environments.

Authors:  Patricia M McAndrew; Jason M Wilken; Jonathan B Dingwell
Journal:  J Biomech       Date:  2010-11-20       Impact factor: 2.712

Review 3.  Using dynamic walking models to identify factors that contribute to increased risk of falling in older adults.

Authors:  Paulien E Roos; Jonathan B Dingwell
Journal:  Hum Mov Sci       Date:  2013-10-10       Impact factor: 2.161

4.  Influence of neuromuscular noise and walking speed on fall risk and dynamic stability in a 3D dynamic walking model.

Authors:  Paulien E Roos; Jonathan B Dingwell
Journal:  J Biomech       Date:  2013-05-06       Impact factor: 2.712

5.  Influence of simulated neuromuscular noise on the dynamic stability and fall risk of a 3D dynamic walking model.

Authors:  Paulien E Roos; Jonathan B Dingwell
Journal:  J Biomech       Date:  2011-03-26       Impact factor: 2.712

6.  Kinematic measures for assessing gait stability in elderly individuals: a systematic review.

Authors:  D Hamacher; N B Singh; J H Van Dieën; M O Heller; W R Taylor
Journal:  J R Soc Interface       Date:  2011-08-31       Impact factor: 4.118

7.  How healthy older adults regulate lateral foot placement while walking in laterally destabilizing environments.

Authors:  Meghan E Kazanski; Joseph P Cusumano; Jonathan B Dingwell
Journal:  J Biomech       Date:  2020-02-25       Impact factor: 2.712

Review 8.  Assessing the stability of human locomotion: a review of current measures.

Authors:  S M Bruijn; O G Meijer; P J Beek; J H van Dieën
Journal:  J R Soc Interface       Date:  2013-03-20       Impact factor: 4.118

9.  Formation mechanism of a basin of attraction for passive dynamic walking induced by intrinsic hyperbolicity.

Authors:  Ippei Obayashi; Shinya Aoi; Kazuo Tsuchiya; Hiroshi Kokubu
Journal:  Proc Math Phys Eng Sci       Date:  2016-06       Impact factor: 2.704

Review 10.  Movement variability near goal equivalent manifolds: fluctuations, control, and model-based analysis.

Authors:  Joseph P Cusumano; Jonathan B Dingwell
Journal:  Hum Mov Sci       Date:  2013-11-07       Impact factor: 2.161

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