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Dynamic primitives in constrained action: systematic changes in the zero-force trajectory

James Hermus, Joseph A. Doeringer, Dagmar Sternad, Neville Hogan

Year
2023
Citations
5

Abstract

Control using primitive dynamic actions may explain why human performance is superior to robots despite seemingly inferior "wetware"; however, this also implies limitations. For a crank-turning task, this work quantified two such informative limitations. Force was exerted even though it produced no mechanical work, the underlying zero-force trajectory was roughly elliptical, and its orientation differed with turning direction, evidence of oscillatory control. At slow speeds, speed variability increased substantially, indicating intermittent control via submovements.

Keywords

TrajectoryControl theory (sociology)CrankMotion (physics)Computer scienceMechanical impedancePhysicsElectrical impedanceControl (management)Artificial intelligence

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