带内 LTE 背向散射

Wenhui Li;Meng Jin;Xiaohua Tian
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摘要

由于长期演进(LTE)下行链路流量的连续性,LTE 信号被认为是一种很有前途的激励信号,可用于无处不在的反向散射通信。但这种连续性也给消除自干扰带来了挑战。现有的反向散射设计通常使用频率偏移来使反向散射信号远离整个激励波段,以避免自干扰。然而,由于 LTE 信号的连续性,LTE 频段被持续占用。因此,没有足够的白频谱可用于移频。为了解决这个问题,我们在本文中提出了一种新颖的 LTE 背向散射设计,它可以在不利用额外频谱的情况下避免自干扰。我们的想法是在充分理解 LTE 资源网格的基础上提出的,我们发现虽然一个频段被激励信号占用,但流量中仍有保留的资源元素。我们可以利用这些资源元素作为带内空白空间来传输反向散射信号。同时,我们解决了双边带调制引起的自抵消问题,并处理了对准问题。我们利用反向散射硬件和软件无线电(SDR)测试平台对设计进行了评估。结果表明,我们的系统实现了 24 米的视距(LOS)发射到标签通信。此外,我们还证明了我们的系统可以在现成的 eNodeB 上运行。它能在多路径情况下实现可靠的反向散射,功耗比最小的同类系统低 6.3 倍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Intra-Band LTE Backscatter
Due to the continuity of long term evolution (LTE) downlink traffic, LTE signal has been considered as a promising excitation signal for ubiquitous backscatter communication. But this continuity also brings challenges in performing self-interference cancellation. Existing backscatter designs commonly use frequency shifting to move backscattered signal away from the entire excitation band to avoid self-interference. However, due to the continuity of LTE signal, LTE bands are occupied continuously. So, there is no enough white spectrum for frequency shifting. To solve this problem, we in this paper propose a novel LTE backscatter design, which can avoid self-interference without leveraging extra spectrum. Our idea is proposed based on a full understanding of the LTE resource grid, where we find that although a band is occupied by an excitation signal, there are still reserved resource elements in the traffic. We can leverage such resource elements as in-band white space to transmit backscatter signal. Meanwhile, we address the self-cancellation issue caused by double sideband modulation, and deal with the aligning issue. Our design is evaluated using a testbed of backscatter hardware and software defined radio (SDR). The results show that our system achieves a distance of 24 m for line-of-sight (LOS) transmit-to-tag communication. Besides, we demonstrate that our system can operate on off-the-shelf eNodeB. It can achieve reliable backscatter in multi-path scenarios, with a power consumption 6.3 times less than its least counterpart.
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