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TinySense: A Lighter Weight and More Power-efficient Avionics System for Flying Insect-scale Robots

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arxiv 2501.03416 v3 pith:UKTSPWUT submitted 2025-01-06 cs.RO cs.SYeess.SY

classification cs.ROcs.SYeess.SY
keywords sensorsizesystemavionicsbeencapturecontrolcrazyflie
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In this paper, we introduce advances in the sensor suite of an autonomous flying insect robot (FIR) weighing less than a gram. FIRs, because of their small weight and size, offer unparalleled advantages in terms of material cost and scalability. However, their size introduces considerable control challenges, notably high-speed dynamics, restricted power, and limited payload capacity. While there have been advancements in developing lightweight sensors, often drawing inspiration from biological systems, no sub-gram aircraft has been able to attain sustained hover without relying on feedback from external sensing such as a motion capture system. The lightest vehicle capable of sustained hovering -- the first level of ``sensor autonomy'' -- is the much larger 28 g Crazyflie. Previous work reported a reduction in size of that vehicle's avionics suite to 187 mg and 21 mW. Here, we report a further reduction in mass and power to only 78.4 mg and 15 mW. We replaced the laser rangefinder with a lighter and more efficient pressure sensor, and built a smaller optic flow sensor around a global-shutter imaging chip. A Kalman Filter (KF) fuses these measurements to estimate the state variables that are needed to control hover: pitch angle, translational velocity, and altitude. Our system achieved performance comparable to that of the Crazyflie's estimator while in flight, with root mean squared errors of 1.573 deg, 0.186 m/s, and 0.136 m, respectively, relative to motion capture.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. All Eyes, no IMU: Learning Flight Attitude from Vision Alone

    cs.RO 2025-07 conditional novelty 7.0 of 10

    A quadrotor was flown with closed-loop attitude and rate control driven purely by event-camera vision through a recurrent CNN, without using an IMU in the inner loop.

  2. Design of a bioinspired robophysical antenna for insect-scale tactile perception and navigation

    cs.RO 2025-07 conditional novelty 6.0 of 10

    A cockroach-inspired, low-power capacitive tactile antenna (CITRAS) provides accurate hinge-angle sensing and can estimate wall distances, gap widths, and surface texture for insect-scale robots.

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