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December 4, 2025Biomimetics0 citationsOpen Access

Design and Sensing Frameworks of Soft Octopus-Inspired Grippers Toward Artificial Intelligence

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JJJunwon JangDKDa Wan Kim

Key Points

  • Soft robotics enhances adaptability and safe interaction with octopus-inspired grippers.
  • Key aspects include control strategies to regulate arm curvature, and accurate sensing methods like optical sensing and triboelectric sensing.
  • Assessment of octopus-inspired grippers focuses on adaptable design features and advanced sensing capabilities.
  • Implication highlights the potential for improved versatility and performance in robotic applications, enhancing user interaction and effectiveness.

Abstract

Soft robotics provides compliance, safe interaction, and adaptability that rigid systems cannot easily achieve. The octopus offers a powerful biological model, combining reversible suction adhesion, continuum arm motion, and reliable performance in wet environments. This review examines recent octopus-inspired soft grippers through three functional dimensions: structural and sensing devices, control strategies, and AI-driven applications. We summarize suction-cup geometries, tentacle-like actuators, and hybrid structures, together with optical, triboelectric, ionic, and deformation-based sensing modules for contact detection, force estimation, and material recognition. We then discuss control frameworks that regulate suction engagement, arm curvature, and feedback-based grasp adjustment. Finally, we outline AI-assisted and neuromorphic-oriented approaches that use event-driven sensing and distributed, spike-inspired processing to support adaptive and energy-conscious decision-making. By integrating developments across structure, sensing, control, and computation, this review describes how octopus-inspired grippers are advancing from morphology-focused designs toward perception-enabled and computation-aware robotic platforms.

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Cite This Study

Jang et al. (2025) studied this question.

synapsesocial.com/papers/694023fa2d562116f28fdb17https://doi.org/10.3390/biomimetics10120813
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