电场短距离空中通信可穿戴和物联网应用与现成的微控制器

Muhammad Zeeshan, A. Pouryazdan, Robert Cobden, Stephen Wang, R. Prance, D. Roggen
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引用次数: 1

摘要

可穿戴和家庭物联网应用需要低功耗连接,以最大限度地延长电池寿命。感应调制电场,被称为电容耦合通信,是一种有前途的替代通信通过电磁波。然而,通过电场实现可靠的空中通信仍然是一个研究挑战。我们描述了一种高效的基于电场的无线通信系统,该系统使用频移键控(FSK)实现了一臂长的通信范围,吞吐量适合实时传感器流甚至音频流。这是通过一个高灵敏度的电位接收器实现的,允许在弱耦合时进行通信,例如在远离任何其他物体或人体的两个设备之间。数字FSK接收机采用欠采样技术来降低实现的复杂性。这项工作的另一个贡献是使用低功耗ARM微控制器来执行调制/解调,并使用一些额外的现成数字和模拟组件。在五种不同的场景/环境中,我们对系统在改变传输电压和通信距离时的性能进行了详细的分析。从误码率(BER)和吞吐量两方面对其性能进行了分析和比较。当放置在柏油路上时,该系统能够在最佳情况下提供高达1.2米的可靠通信链路,用户吞吐量为75 kbps。结果还表明,在最坏的情况下,当两个设备通过串挂在空中时,该系统在70厘米的距离上实现了至少80 kbps的用户吞吐量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electric Field Short-range Over-the-air Communication for Wearable and IoT Applications with Off-the-shelf Microcontrollers
Wearable and home IoT applications require low-power connectivity to maximize battery life. Sensing a modulated electric field, referred to as capacitively coupled communication, is a promising alternative to communication via electromagnetic waves. However, achieving a reliable over-the-air communication through electric field remains a research challenge. We describe an efficient electric field based over-the-air communication system using frequency shift keying (FSK) which achieves arm’s length communication range with throughput suitable for real-time sensor streaming or even audio streaming. This is achieved through a highly sensitive electric potential receiver allowing communication when weakly coupled, such as between two devices far from any other object or human body. The digital FSK receiver uses an undersampling technique to reduce the complexity of the implementation. Another contribution of this work is the use of low-power ARM microcontroller to perform the modulation/demodulation, with a few additional off-the-shelf digital and analog components. We present a detailed performance analysis of the system when varying the transmit voltage and communication distance in five different scenarios/environments. The performance is analyzed and compared in terms of bit error rate (BER) and throughput. The system is capable of providing reliable communication link up to 1.2m with a user throughput of 75 kbps in the best case scenario, when placed over tarmac road. It is also shown that the system achieves a user throughput of at least 80 kbps for a distance of 70cm in the worst case scenario, when both the devices are hanged in air through strings.
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