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A Biomechanics-Inspired Approach to Soccer Kicking for Humanoid Robots

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arxiv 2407.14612 v1 pith:Z5JEMID4 submitted 2024-07-19 cs.RO

classification cs.RO
keywords kickingsoccerhumanoiddynamicmotionrobotapproachball
verification ladder T0 review T1 audit T2 compute T3 formal

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Soccer kicking is a complex whole-body motion that requires intricate coordination of various motor actions. To accomplish such dynamic motion in a humanoid robot, the robot needs to simultaneously: 1) transfer high kinetic energy to the kicking leg, 2) maintain balance and stability of the entire body, and 3) manage the impact disturbance from the ball during the kicking moment. Prior studies on robotic soccer kicking often prioritized stability, leading to overly conservative quasi-static motions. In this work, we present a biomechanics-inspired control framework that leverages trajectory optimization and imitation learning to facilitate highly dynamic soccer kicks in humanoid robots. We conducted an in-depth analysis of human soccer kick biomechanics to identify key motion constraints. Based on this understanding, we designed kinodynamically feasible trajectories that are then used as a reference in imitation learning to develop a robust feedback control policy. We demonstrate the effectiveness of our approach through a simulation of an anthropomorphic 25 DoF bipedal humanoid robot, named PresToe, which is equipped with 7 DoF legs, including a unique actuated toe. Using our framework, PresToe can execute dynamic instep kicks, propelling the ball at speeds exceeding 11m/s in full dynamics simulation.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Mimicking-Bench: A Benchmark for Generalizable Humanoid-Scene Interaction Learning via Human Mimicking

    cs.RO 2024-12 conditional novelty 6.0 of 10

    Mimicking-Bench provides six humanoid-scene interaction tasks with 23K human motion references and a retarget-track-imitate pipeline that beats data-free RL on average success.

  2. Maximum Impulse Approach to Soccer Kicking for Humanoid Robots

    cs.RO 2024-12 conditional novelty 6.0 of 10

    An analytic, torque-aware in-walk kick generator using constant-acceleration swing phases achieves 42% longer kicks than a waveform baseline in simulation and a full-field kick on a real humanoid.

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