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Ambient Backscatter-Assisted Wireless-Powered Relaying

机译:环境反向散射辅助无线供电

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Internet-of-Things (IoT) features with low-power communications among a massive number of ubiquitously-deployed and energy-constrained electronics, e.g., sensors and actuators. To cope with the demand, wireless-powered cooperative relaying emerges as a promising communication paradigm to extend data transmission coverage and solve energy scarcity for the IoT devices. In this paper, we propose a novel hybrid relaying strategy by combining wireless-powered communication and ambient backscattering functions to improve the applicability and performance of data transfer. In particular, the hybrid relay can harvest energy from radio frequency (RF) signals and use the energy for active transmission. Alternatively, the hybrid relay can choose to perform ambient backscattering of incident RF signals for passive transmission. For the operation of the hybrid relaying, selecting a proper mode based on the network environment is the key to better relaying performance. To address this issue, we design mode selection protocols to coordinate between the active and passive relaying in the cases with and without instantaneous channel state information (CSI) of active transmission, respectively. In the former case, since the hybrid relay is aware of whether the two relaying modes are applicable for the current time slot based on the CSI, it selects active relaying if applicable due to higher capacity and selects passive relaying otherwise. In the latter case, the hybrid relay first explores the two relaying modes and commits to the mode that achieves more successful transmissions during the exploration period. With different mode selection protocols, we characterize the success probability and ergodic capacity of a dual-hop relaying system with the hybrid relay in the field of randomly located ambient transmitters. The analytical and the numerical results demonstrate the effectiveness of the mode selection protocols in adapting the hybrid relaying into the network environment and reveal the impacts of system parameters on the performance of the hybrid relaying. As applications of our analytical framework which is computationally tractable, we formulate optimization problems based on the derived expressions to optimize the system parameters with different objectives. The optimal solutions exhibit a tradeoff between the maximum energy efficiency and target success probability.
机译:内容的东西(物联网)具有低功耗通信的功能,包括大量的普遍存在和能量受限的电子设备,例如传感器和执行器。为了应对需求,无线动力的协作中继出现为有希望的通信范例,以扩展数据传输覆盖率并解决IOT设备的能量稀缺。在本文中,我们通过结合无线供电的通信和环境反向散射功能来提出一种新的混合中继策略来提高数据传输的适用性和性能。特别地,混合继电器可以从射频(RF)信号中收获能量并使用能量进行主动传输。或者,混合继电器可以选择对被动传输的入射RF信号进行环境反向散射。对于混合中继的操作,基于网络环境选择适当的模式是更好地中继性能的关键。为了解决这个问题,我们设计模式选择协议以分别在具有和无瞬时信道状态信息(CSI)的情况下的主动和被动中继之间的坐标。在前一种情况下,由于混合继电器知道两种中继模式是否适用于基于CSI的当前时隙,因此如果由于更高的容量而选择,则选择主动中继并选择被动中继。在后一种情况下,混合继电器首先探讨两个中继模式,并提交到在探索时段期间实现更成功的变速器的模式。利用不同的模式选择协议,我们将双跳中继系统的成功概率和ergodic能力与随机定位的环境变送器领域的混合继电器进行了成功概率和遍历能力。分析和数值结果证明了模式选择协议在调整混合中继到网络环境中的有效性,并揭示了系统参数对混合中继性能的影响。作为我们的分析框架的应用,该框架是在计算上进行的,我们基于派生表达式制定优化问题,以优化具有不同目标的系统参数。最佳解决方案在最大能效和目标成功概率之间表现出折衷。

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