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GenLoco: Generalized Locomotion Controllers for Quadrupedal Robots
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Recent years have seen a surge in commercially-available and affordable quadrupedal robots, with many of these platforms being actively used in research and industry. As the availability of legged robots grows, so does the need for controllers that enable these robots to perform useful skills. However, most learning-based frameworks for controller development focus on training robot-specific controllers, a process that needs to be repeated for every new robot. In this work, we introduce a framework for training generalized locomotion (GenLoco) controllers for quadrupedal robots. Our framework synthesizes general-purpose locomotion controllers that can be deployed on a large variety of quadrupedal robots with similar morphologies. We present a simple but effective morphology randomization method that procedurally generates a diverse set of simulated robots for training. We show that by training a controller on this large set of simulated robots, our models acquire more general control strategies that can be directly transferred to novel simulated and real-world robots with diverse morphologies, which were not observed during training.
Forward citations
Cited by 3 Pith papers
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Sampling Strategies for Robust Universal Quadrupedal Locomotion Policies
A particle-filter-based adaptive sampling of morphologies and wide PD-gain randomization yields a single quadruped locomotion policy that transfers zero-shot to ANYmal hardware.
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Koopman Operator Based Linear Model Predictive Control for Quadruped Trotting
A Koopman-operator linear model of a quadruped's single-rigid-body dynamics is used in a linear model predictive controller that tracks speeds and rejects pushes on a Unitree Go1.
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Reference Free Platform Adaptive Locomotion for Quadrupedal Robots using a Dynamics Conditioned Policy
A single dynamics-conditioned RL policy transfers zero-shot across quadrupeds from 12 kg to 50 kg, and diverse reference robots during training clearly improve tracking.
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