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Updated: Jun 22, 2025

Experimental Methods to Study Human Postural Control
Published on: September 11, 2019
On the analysis and control of a bipedal legged locomotion model via partial feedback linearization
Hasan Hamzaçebi1, Ismail Uyanik2, Ömer Morgül1
1Department of Electrical and Electronics Engineering, Bilkent University, 06800 Ankara, Turkey.
None:
In this study, we introduce a new model for bipedal locomotion that enhances the classical spring-loaded inverted pendulum (SLIP) model. Our proposed model incorporates a damping term in the leg spring, a linear actuator serially interconnected to the leg, and a rotary actuator affixed to the hip. The distinct feature of this new model is its ability to overcome the non-integrability challenge inherent in the conventional SLIP models through the application of partial feedback linearization. By leveraging these actuators, our model enhances the stability and robustness of the locomotion mechanism, particularly when navigating across varied terrain profiles. To validate the effectiveness and practicality of this model, we conducted detailed simulation studies, benchmarking its performance against other recent models outlined in the literature. Our findings suggest that the redundancy in actuation introduced by our model significantly facilitates both open-loop and closed-loop walking gait, showcasing promising potential for the future of bipedal locomotion, especially for bio-inspired robotics applications in outdoor and rough terrains.
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