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Biology subjects

Grover, F. M.

Publications and source records attributed to Grover, F. M..

2 recordsLinked to original sources

Environmental Consistency, Not Certainty, Governs Predictive Motor Strategies During Walking

Humans rely on predictive control to maintain stability while walking in dynamic environments, yet the strategies driving this control remain unclear when environments are inconsistent or uncertain. We tested how people adapt to repeated lateral force field disruptions of switching directions, manipulating the force fields Consistency (how often switches occurred) and Certainty (how predictable the switches were). We quantified motor adaptation (error reduction) and sought evidence for two predictive strategies: pattern prediction (detecting a global trial pattern) and carryover prediction (assuming the next trial matches the previous). Adaptation profiles revealed a surprising finding: Consistency, not certainty, drove predictive control. When trials were Consistent, participants pursued appropriate predictive strategies (pattern or carryover). However, when trials were Inconsistent, participants exhibited counterproductive strategies, such as carryover prediction (despite the next trial most often being opposite) or no prediction (despite full certainty of each forthcoming trial). Error reduction was likewise dominated by consistency, with certainty exerting negligible influence. These findings, counter to long-held observations in upper-limb control, suggest the central nervous system faces unique challenges in whole-body control of walking and cannot rely on the simpler adaptation strategies observed in isolated limb control. This raises new, important questions for control of walking and whole-body motor adaptation.

animal behavior and cognition↗

Stability and Manoeuvrability Interactions During Human Walking Depend on the Manoeuvre Direction

People use the mechanical interplay between stability and manoeuvrability to successfully walk. During single limb support, body states (position and velocity) that increase lateral stability will inherently resist lateral manoeuvres, decrease medial stability, and facilitate medial manoeuvres. Although not well understood, people can make behavioural decisions exploiting this relationship in anticipation of perturbations or direction changes. To characterize the behavioural component of the stability-manoeuvrability relationship, twenty-four participants performed many repetitions of a discrete stepping task involving mid-trial reactive manoeuvres (medial or lateral direction) in a Baseline (no external perturbations) and Perturbed (random mediolateral perturbations applied to their pelvis) environment. We hypothesized people would make systematic changes in lateral stability dependent on both environment (increasing lateral stability in the Perturbed environment) and anticipated manoeuvre direction (reducing lateral stability to facilitate lateral manoeuvres). Participants increased lateral stability in the Perturbed environment, coinciding with an increase in manoeuvre reaction time for laterally but not medially directed manoeuvres. Moreover, we observed lower lateral stability in both environments when people anticipated making a lateral manoeuvre when compared to medial manoeuvres. These results support the hypothesis that people behaviourally exploit the mechanical relationship between lateral stability and manoeuvrability depending on walk task goals and external environment.

bioengineering↗