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February 26, 20260 citationsOpen Access

Contact Implicit Control for the Vertical Hopper

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BBBlanka Friederike Burchard

Key Points

  • To explore a contact-implicit MPC framework for legged robots to improve jumping capability.
  • Developed a contact-implicit model predictive control framework for a vertical hopper.
  • Validated the controller using MuJoCo simulation.
  • Analyzed impulse calculation inaccuracies due to relaxation in the contact model.
  • Validated the controller showed smooth jumping motions in simulations.
  • Identified performance degradation with larger timesteps.
  • Highlighted potential improvements through advanced optimization methods.

Abstract

Legged robots offer significant potential for tasks in challenging environ- ments, but their control remains complex due to highly nonlinear dy- namics and hybrid contact behaviors. Model Predictive Control (MPC) is a promising approach, yet traditional methods often rely on predefined contact modes, sacrificing optimality and limiting adaptability. This the- sis explores a contact-implicit MPC framework for a vertical hopper to enable autonomous contact discovery and achieve desired jump heights without pre-planned trajectories. The developed controller is iLQR based and uses a relaxed contact model. It was successfully validated on an ex- ternal MuJoCo simulation, demonstrating its ability to generate smooth jumping motions. However, it could be observed that the relaxation used in the contact model introduced inaccuracies, particularly in impulse cal- culation, which led to performance degradation with larger timesteps and violated strict Signorini conditions. Recommendations for future work include implementing more sophisticated optimization methods like the bisection method, employing higher-order numerical integrators such as Runge-Kutta, and optimizing computational efficiency through matrix caching. This research underscores the functionality of contact-implicit control while identifying critical areas for improvement to achieve robust, real-time performance for dynamic legged systems.

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Cite This Study

Blanka Friederike Burchard (2025) studied this question.

synapsesocial.com/papers/699f95ba1bc9fecf3dab3e72https://doi.org/10.26092/elib/5510
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