Push the Limit of Device-Free Acoustic Sensing on Commercial Mobile Devices

Haiming Cheng, W. Lou
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引用次数: 10

Abstract

Device-free acoustic sensing has obsessed with renovating human-computer interaction techniques for all-sized mobile devices in various applications. Recent advances have explored sound signals in different methods to achieve highly accurate and efficient tracking and recognition. However, accuracies of most approaches remain bottlenecked by the limited sampling rate and narrow bandwidth, leading to restrictions and inconvenience in applications. To bridge over the aforementioned daunting barriers, we propose PDF, a novel ultrasound-based device-free tracking scheme that can distinctly improve the resolution of fine-grained sensing to submillimetre level. In its heart lies an original Phase Difference based approach to derive time delay of the reflected Frequency-Modulated Continuous Wave (FMCW), thus precisely inferring absolute distance, catering to interaction needs of tinier perception with lower delay. The distance resolution of PDF is only related to the speed of actions and chirp duration. We implement a prototype with effective denoising methods all in the time domain on smartphones. The evaluation results show that PDF achieves accuracies of 2.5 mm, 3.6 mm, and 2.1 mm in distance change, absolute distance change, and trajectory tracking error respectively. PDF is also valid in recognizing 2 mm or even tinier micro-movements, which paves the way for more delicate sensing work.
推动商用移动设备上无设备声学传感的极限
无设备声传感一直致力于在各种应用中革新各种尺寸移动设备的人机交互技术。近年来的研究进展探索了不同方法的声音信号,以实现高精度和高效的跟踪和识别。然而,大多数方法的精度仍然受到采样率和带宽的限制,导致应用上的限制和不便。为了克服上述令人生畏的障碍,我们提出了PDF,一种新的基于超声的无设备跟踪方案,可以显着提高细粒度感知到亚毫米级的分辨率。其核心是独创的基于相位差的方法来推导反射调频连续波(FMCW)的时延,从而精确地推断绝对距离,满足感知更小、时延更低的交互需求。PDF的距离分辨率只与动作速度和啁啾持续时间有关。我们在智能手机上实现了一个具有有效去噪方法的原型。评估结果表明,PDF在距离变化、绝对距离变化和轨迹跟踪误差方面分别达到2.5 mm、3.6 mm和2.1 mm的精度。PDF在识别2毫米甚至更小的微运动时也是有效的,这为更精细的传感工作铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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