CORTEXA
← Browse
arxivcs.RO2026-07-17

Towards Artificial Nerves: Biomimetic Optical-Fiber Tactile Sensing for Robots

Laura E. Butcher, Chris J. Ford, Nathan F. Lepora, Efi Psomopoulou

Robotic systems increasingly demand tactile sensing that approaches the adaptability and resolution of human skin to enable dexterous manipulation and safe interaction. OptiTac is a biomimetic tactile sensor that emulates the mechanoreceptor-to-nerve architecture of human touch by pairing each mechanical pin on a soft skin with an optical fiber acting as an artificial nerve. This design demonstrates an architectural principle for routing tactile information away from the sensing surface while preserving high spatial resolution, establishing a practical route toward distributed tactile sensing in future robotic systems. By treating tactile signals as images, simple analytical methods, rather than opaque deep-learning models, are used to infer contact location, size, and shape, providing interpretable and scalable tactile intelligence. This work demonstrates how evolutionary principles from biology can guide the development of artificial nerve systems for robots, offering a pathway toward human-like tactile perception in next-generation robotic platforms. More broadly, OptiTac establishes an artificial nerve-inspired sensing framework for interpretable robotic touch and a scalable route toward future distributed tactile systems.

View free PDFSource page

Related papers

arxivcs.ROcs.HC2026-07-13

Requirement-Driven Design of Whole-Body Social Tactile Sensing via Virtual Human-Robot Interaction

Dakarai Crowder, Ruohan Zhang, Alexis E. Block, Wenzhen Yuan

Tactile sensing for social-physical human-robot interaction (spHRI) is designed in a hardware-driven manner, where predefined sensor configurations constrain coverage, spatial resolution, and the range of recognizable gestures. We propose a requirement-driven framework that deriv…

View free PDFSource page
arxivcs.ROeess.SP2026-07-02

Metallic Ultrasound Waveguides as a Distributed Tactile Sensing Platform for Contact Localization, Force Estimation, and Material Class Discrimination

Alexandros Rosakis, Alessio Tamborini, Basile Fakhoury, Cole Bailey, Morteza Gharib

Tactile sensing is central to how robotic systems interact with the real world, yet current solutions face a tradeoff between sensing area and system complexity. This work investigates metallic ultrasound waveguides as distributed tactile sensors fully interrogated from a single…

View free PDFSource page
arxivcs.RO2026-06-29

TacEvo: Self-Evolving Architecture Discovery for Robotic Tactile Perception via LLM-Driven Quality-Diversity Search

Mohammed AbuSadeh, Lan Wei, Dandan Zhang

Vision-based tactile sensing converts contact-induced surface deformation into images, enabling robots to infer contact forces and fine surface textures that are not accessible through conventional vision alone. However, tactile images are sensor- and physics-specific, so effecti…

View free PDFSource page
arxivcs.RO2026-07-06

GelNeuro: A Sensing-Computing Integrated Neuromorphic Tactile System for Texture Recognition

Luoyang Bian, Xinpan Meng, Zhenghua Ma, Houcheng Li, Long Cheng

Neuromorphic visuo-tactile sensing offers a promising paradigm for low-latency and low-power robotic perception. However, existing systems still rely heavily on a host computer for event readout, preprocessing, or relaying prior to chip inference. This paper presents GelNeuro, a…

View free PDFSource page
arxivcs.ROcs.MA2026-07-15

Stochastic Filtering for Quorum Sensing in Robot Swarms under Anonymous Communication

Fabio Oddi, Andreagiovanni Reina, Vito Trianni

Quorum Sensing (QS) is a key capability for robot swarms, useful for coordination of activities at the group level. Effective communication is instrumental for individuals to estimate the quorum level of the entire swarm. Anonymous communication protocols where individuals exchan…

View free PDFSource page