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Nature Communications· 2026Q1

Whisker-based tactile flight for tiny drones

Chaoxiang Ye, Guido de Croon, Salua Hamaza

Short summary

A 3.2-gram whisker-based tactile sensing apparatus allows tiny drones to autonomously avoid obstacles and explore confined spaces using millimeter-scale depth estimation, even in complete darkness and with limited onboard memory (192 KB).

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Abstract

Abstract Tiny flying robots hold great potential for search-and-rescue, safety inspections, and environmental monitoring, but their small size and limited computational resources constrain onboard sensing capabilities. Inspired by animals such as rats and moles which rely on lightweight whiskers to navigate and perceive their surroundings through touch, we present a 3.2-gram whisker-based tactile sensing apparatus that enables tiny drones to perceive and interact with their environment through gentle physical contact, even in complete darkness. The apparatus employs barometers at the base of each whisker to estimate contact depth in flight, enabling obstacle localization while minimizing contact-induced destabilization. To compensate for sensor noise and drift during sustained contact, we develop a tactile depth estimation pipeline that achieves millimeter-scale depth estimation accuracy. Together, these innovations enable tiny drones to autonomously avoid obstacles, contour surfaces, and explore confined spaces, guided by onboard tactile sensing across both rigid and soft environments. Running entirely onboard a microcontroller with just 192 KB of memory, our system demonstrates autonomous tactile flight across various scenarios. This bio-inspired approach extends perception for mobile robots beyond vision, opening new possibilities for autonomous operations in visually degraded and GPS-denied environments.

The authors' abstract, as published at the source. Nature Communications, 2026 · DOI ↗

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Field: Aerospace Engineering

Aerospace EngineeringEngineering