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マニピュレーションarXiv:2606.08281v3

相互作用ダイナミクスに向けて:安全な物理的ヒューマンロボットインタラクションのための予測フレームワーク

Toward Interaction Dynamics: A Predictive Framework for Safe Physical Human Robot Interaction

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トルク制御マニピュレータのためのオフセットフリーな相互作用誤差MPCを提案し、力領域ランダムウォークで持続的な相互作用とモデル誤差を推定し、凸QPで補正を計算する。シミュレーションで定常誤差を大幅に低減し、インピーダンス制御と比較して性能を実証した。

著者: Yongyan Cao, Jinshan Tang

分類: cs.RO, cs.HC, eess.SY, physics.med-ph

原文アブストラクト

Physical human-robot interaction requires yielding transiently to contact yet recovering the commanded reference under sustained load. Finite-stiffness impedance control retains a static deflection there, while predictive alternatives typically optimize a nonlinear robot or impedance model online. Operational-space cancellation instead exposes a translational error double integrator with a fixed transition matrix and a configuration-scheduled input map, making interaction a predictive quantity rather than a property re-derived per configuration. We build on it a compact offset-free interaction-error MPC for torque-controlled manipulators: a force-domain random-walk state estimates persistent interaction and model error, and a 30-variable convex QP maps the correction through the current task inertia while constraining the applied joint torque. Conditional results establish impedance equivalence of the unconstrained passive feedback, offset-free regulation at feasible frozen configurations, and quadratic stabilizability of the scheduled backbone. In a 1kHz MuJoCo simulation of a 7-DOF Franka FR3, the estimator cuts steady-state error under a repeated 15N step from 2.77mm to 0.042mm when added to the otherwise identical 100Hz MPC. A stiffness-and-damping-calibrated impedance baseline attains 2.59mm but briefly saturates and needs 3.3x the peak positive joint power. Adding ideal measured-force cancellation to that baseline gives 1.39mm, so constant-load rejection is not unique to MPC; the sensorless controller still reaches 0.042mm in the moving task, a 65x reduction without force sensing and without the baseline's saturation or power cost. Demonstrated in simulation under a shared actuator budget, the contribution is an efficient operational-space realization complementing rather than replacing broader interaction-control architectures.

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