RONov 13, 2020

3-D Motion Capture of an Unmodified Drone with Single-chip Millimeter Wave Radar

arXiv:2011.06730v131 citations
Originality Highly original
AI Analysis

This provides a low-cost, easily deployable solution for drone tracking without modifications, potentially catalyzing inexpensive drone research and autonomy in settings like warehouses.

The paper tackles the problem of 3-D motion capture for drones in indoor environments by developing a system using single-chip millimeter wave radar that exploits Doppler signals from rotating propellers, achieving decimeter-level tracking at 10Hz with better performance than classical baselines.

Accurate motion capture of aerial robots in 3-D is a key enabler for autonomous operation in indoor environments such as warehouses or factories, as well as driving forward research in these areas. The most commonly used solutions at present are optical motion capture (e.g. VICON) and Ultrawideband (UWB), but these are costly and cumbersome to deploy, due to their requirement of multiple cameras/sensors spaced around the tracking area. They also require the drone to be modified to carry an active or passive marker. In this work, we present an inexpensive system that can be rapidly installed, based on single-chip millimeter wave (mmWave) radar. Importantly, the drone does not need to be modified or equipped with any markers, as we exploit the Doppler signals from the rotating propellers. Furthermore, 3-D tracking is possible from a single point, greatly simplifying deployment. We develop a novel deep neural network and demonstrate decimeter level 3-D tracking at 10Hz, achieving better performance than classical baselines. Our hope is that this low-cost system will act to catalyse inexpensive drone research and increased autonomy.

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