Perfectly Synchronized Streaming from Digitally Modulated Multiple Backscatter Sensor Tags

J. Mitsugi, Yuusuke Kawakita, K. Egawa, H. Ichikawa
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引用次数: 5

Abstract

This paper proposes a multiple access method, referred to as Multiple Subcarrier Multiple Access (MSMA), for perfectly synchronized concurrent data collection from a group of passive backscatter wireless sensor tags and its experimental evaluation. By achieving less than 128 micro second synchronization error, backscatter communications can be applied to structural health monitoring of artifacts such as civil structures and machineries. In MSMA, each sensor tag uses a dedicated subcarrier frequency to produce a modulated backscatter. The sensor data is superposed onto the subcarrier either with an analog or a digital modulation. The inevitable harmonics among the subcarriers, stemming from the backscatter principle, can be rejected by numerically calculating the harmonic replicas and subtracting them from the observed signal in a software defined receiver. A frame based signal processing in the receiver results in no relative synchronization error among subcarriers even after the interference rejection. Since the interference rejection can be done before the demodulation and decoding, the concurrency can be secured irrespective to the choice of modulation method. We developed a prototype of MSMA using LabVIEW communications Software Defined Radio environment and prototype sensor tags using discrete electrical parts. The performances and limitation of MSMA using digitally modulated subcarriers are evaluated both in wired and wireless environments with up to four backscatter sensors.
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从数字调制的多个反向散射传感器标签完美同步流
针对一组无源后向散射无线传感器标签的完美同步数据采集,提出了一种多载波多址(multiple Subcarrier multiple access, MSMA)多址方法并对其进行了实验评估。通过实现小于128微秒的同步误差,反向散射通信可以应用于土木结构和机械等人工制品的结构健康监测。在MSMA中,每个传感器标签使用专用的子载波频率来产生调制后向散射。传感器数据通过模拟或数字调制叠加到副载波上。由于反向散射原理,子载波之间不可避免的谐波可以通过数值计算谐波副本并在软件定义的接收机中从观测信号中减去它们来抑制。接收机中基于帧的信号处理即使在抑制干扰后也不会产生子载波间的相对同步误差。由于干扰抑制可以在解调和解码之前完成,因此无论调制方法的选择如何,都可以保证并发性。我们使用LabVIEW通信软件定义无线电环境开发了MSMA的原型,并使用离散电子部件开发了原型传感器标签。在有线和无线环境下,对使用数字调制子载波的MSMA的性能和局限性进行了评估。
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