论文标题

环境反向散射通信的有效比率检测器

An Efficient Ratio Detector for Ambient Backscatter Communication

论文作者

Liu, Wenjing, Shen, Shanpu, Tsang, Danny H. K., Mallik, Ranjan K., Murch, Ross

论文摘要

环境反向散射通信(AMBC)利用现有的环境射频(RF)环境来实施与无电池设备的通信。 AMBC系统的一个关键挑战是信号恢复,因为传输的信息位嵌入了环境RF信号中,并且这些位置是未知且无法控制的。为了解决此问题,大多数现有方法都使用基于平均的能量探测器,因此数据速率较低,并且存在错误地面。在这里,我们提出了一种新的检测策略,该策略是基于从多 - 安特纳纳读取器收到的信号之间的比率。使用该比率的优点是,环境RF信号直接从嵌入式信号中删除而无需平均,因此可以提高数据速率并避免误差地面。与使用两个读取器天线之间信号的幅度比的原始比率检测器不同,在我们建议的方法中,我们利用了复杂比率,以保留相位信息并提出准确的线性通道模型近似。这允许应用现有的线性检测技术,从中我们可以从中获得最小距离检测器和位错误率(BER)的闭合形式表达式。此外,还可以包括平均,编码和交织以进一步增强BER。结果也是一般的,允许在方法中使用任何数量的读取器天线。数值结果表明,根据能量检测和原始比率检测器,所提出的方法的性能优于方法。

Ambient backscatter communication (AmBC) leverages the existing ambient radio frequency (RF) environment to implement communication with battery-free devices. One critical challenge of AmBC systems is signal recovery because the transmitted information bits are embedded in the ambient RF signals and these are unknown and uncontrollable. To address this problem, most existing approaches use averaging-based energy detectors and consequently the data rate is low and there is an error floor. Here we propose a new detection strategy based on the ratio between signals received from a multiple-antenna Reader. The advantage of using the ratio is that ambient RF signals are removed directly from the embedded signals without averaging and hence it can increase data rates and avoid the error floor. Different from original ratio detectors that use the magnitude ratio of the signals between two Reader antennas, in our proposed approach, we utilize the complex ratio so that phase information is preserved and propose an accurate linear channel model approximation. This allows the application of existing linear detection techniques from which we can obtain a minimum distance detector and closed-form expressions for bit error rate (BER). In addition, averaging, coding and interleaving can also be included to further enhance the BER. The results are also general, allowing any number of Reader antennas to be utilized in the approach. Numerical results demonstrate that the proposed approach performs better than approaches based on energy detection and original ratio detectors.

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