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Efficient Channel State Information Acquisition for Device-to-Device Networks

机译:设备到设备网络的高效通道状态信息获取

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摘要

We consider the problem of acquiring channel state information (CSI) in base-station (BS) controlled device-to-device (D2D) networks. Obtaining high-quality CSI requires a tradeoff between interference, outdatedness of CSI, and noise. Thus, the goal is to find an efficient pilot scheduling scheme that minimizes errors in the estimates. In this paper, we present the location aware training scheme (LATS) as simple yet efficient training technique. Assuming that the devices are aware of their location, LATS groups the devices into geographical segments and assigns a frequency reuse pattern to them. To identify the parameters of the scheme (segmentation and guard parameters, and , respectively), we use the average normalized mean square error (NMSE) as a metric, which combines the effects of outdatedness, noise, and interference. We derive an approximation of the average NMSE based on statistics of the devices and LATS structure. We present simulation results that illustrate LATS behavior and show that it outperforms TDMA- and CSMA-based schemes. Furthermore, we consider some practical challenges in using location information and evaluate their effects on the scheme.
机译:我们考虑在基站(BS)控制的设备到设备(D2D)网络中获取信道状态信息(CSI)的问题。要获得高质量的CSI,需要在干扰,CSI的过时性和噪声之间进行权衡。因此,目标是找到一种有效的导频调度方案,以最小化估计中的误差。在本文中,我们将位置感知训练方案(LATS)提出为一种简单而有效的训练技术。假设设备知道其位置,则LATS会将设备分组为地理段,并为其分配频率重用模式。为了确定方案的参数(分别为分割和保护参数),我们使用平均归一化均方误差(NMSE)作为度量标准,将过时,噪声和干扰的影响结合在一起。我们根据设备和LATS结构的统计数据得出平均NMSE的近似值。我们提供的模拟结果说明了LATS的行为,并表明它优于基于TDMA和CSMA的方案。此外,我们在使用位置信息时考虑了一些实际挑战,并评估了它们对方案的影响。

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