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Multi-antenna Wireless Energy Transfer for Backscatter Communication Systems

机译:用于背向散射通信系统的多天线无线能量传输

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We study RF-enabled wireless energy transfer (WET) via energy beamforming, from a multi-antenna energy transmitter (ET) to multiple energy receivers (ERs) in a backscatter communication system such as RFID. The acquisition of the forward-channel (i.e., ET-to-ER) state information (F-CSI) at the ET (or RFID reader) is challenging, since the ERs (or RFID tags) are typically too energy-and-hardware-constrained to estimate or feedback the F-CSI. The ET leverages its observed backscatter signals to estimate the backscatter-channel (i.e., ET-to-ER-to-ET) state information (BS-CSI) directly. We first analyze the harvested energy obtained using the estimated BS-CSI. Furthermore, we optimize the resource allocation to maximize the total utility of harvested energy. For WET to single ER, we obtain the optimal channel-training energy in a semiclosed form. For WET to multiple ERs, we optimize the channel-training energy and the energy allocation weights for different energy beams. For the straightforward weighted-sum-energy (WSE) maximization, the optimal WET scheme is shown to use only one energy beam, which leads to unfairness among ERs and motivates us to consider the complicated proportional-fair-energy (PFE) maximization. For PFE maximization, we show that it is a biconvex problem, and propose a block-coordinate-descent-based algorithm to find the close-to-optimal solution. Numerical results show that with the optimized solutions, the harvested energy suffers slight reduction of less than 10%, compared to that obtained using the perfect F-CSI.
机译:我们研究了通过能量波束形成的启用RF的无线能量传输(WET),它在诸如RFID的反向散射通信系统中,从多天线能量发射器(ET)到多个能量接收器(ER)。在ET(或RFID阅读器)上获取前向通道(即ET-to-ER)状态信息(F-CSI)具有挑战性,因为ER(或RFID标签)通常过于耗能和硬件-被约束以估计或反馈F-CSI。 ET利用其观察到的反向散射信号直接估计反向散射通道(即ET-to-ER-to-ET)状态信息(BS-CSI)。我们首先分析使用估计的BS-CSI获得的收获能量。此外,我们优化资源分配以最大程度地利用收获的能源。对于从WET到单ER,我们以半封闭形式获得了最佳的信道训练能量。对于到多个ER的WET,我们针对不同的能量束优化了信道训练能量和能量分配权重。对于简单的加权和能量(WSE)最大化,最优WET方案显示仅使用一个能量束,这导致ER之间的不公平,并促使我们考虑复杂的比例公平能量(PFE)最大化。对于PFE最大化,我们表明这是一个双凸问题,并提出了一种基于块坐标下降的算法来找到接近最优的解决方案。数值结果表明,与使用理想F-CSI所获得的能量相比,采用优化的解决方案所获得的能量仅略微降低了不到10%。

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