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Adaptive robot guidance through real-time compliance estimation and dual-modal control

Ravi Tejwani et al · Nature Portfolio · 2026

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Abstract When human instructors guide learners through motor tasks, they seamlessly coordinate physical touch with verbal explanations - a dance teacher positions a student’s arms while describing the movement, a therapist supports a patient’s limb while offering encouragement. In contrast, a robot applying physical forces without verbal context can feel invasive or unsettling to humans. We present a robot guidance controller that learns to coordinate physical and verbal guidance as human instructors naturally do. Our system adaptively balances these modalities based on real-time estimation of human compliance: when learners struggle, it provides firmer physical corrections with explicit instructions; as they improve, it transitions to lighter touch with encouraging phrases. Our method comprises three components: (1) an estimator that infers physical and verbal compliance from tracking errors, (2) an optimization method that dynamically allocates guidance between force and language, and (3) a force-to-language model that generates contextually appropriate utterances. User studies (N=12) demonstrate that adaptive coordination of guidance significantly outperforms single-modality guidance and fixed-combination baselines: up to 50% reduction in tracking error, 39% improvement in movement smoothness, and 27% faster task completion. While validated in rehabilitation therapy, our approach generalizes to any human-robot collaborative learning scenario.

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APA 7

al, R. T. E. (2026). Adaptive robot guidance through real-time compliance estimation and dual-modal control. https://doi.org/10.1038/s44172-026-00632-5

MLA

al, Ravi Tejwani et. "Adaptive robot guidance through real-time compliance estimation and dual-modal control." 2026. https://doi.org/10.1038/s44172-026-00632-5.

Chicago

al, Ravi Tejwani et. 2026. "Adaptive robot guidance through real-time compliance estimation and dual-modal control.". https://doi.org/10.1038/s44172-026-00632-5.

Harvard

al, R. T. E. 2026, Adaptive robot guidance through real-time compliance estimation and dual-modal control, Nature Portfolio, available at: https://doi.org/10.1038/s44172-026-00632-5 [Accessed 6 Aug. 2026].

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Título
Adaptive robot guidance through real-time compliance estimation and dual-modal control
Autor / colaboradores
Ravi Tejwani et al
Editora
Nature Portfolio
Ano de publicação
2026
ISSN
2731-3395
ISSN
2731-3395
Idioma
Inglés
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