分子通信中的面积率效率

Lukas Brand, Sebastian Lotter, V. Jamali, R. Schober
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引用次数: 2

摘要

我们考虑了一个基于多用户扩散的分子通信(MC)系统,其中多个空间分布的发射器(TX)-接收器(RX)对使用相同类型的信号分子建立点对点通信链路。为了充分发挥这种系统的潜力,需要深入了解空间用户密度与用户间干扰(IUI)之间的相互作用及其在具有大量用户的渐近状态下对系统性能的影响。在本文中,我们采用具有多个独立且空间分布的点对点传输链路的三维(3d)系统模型,其中TXs和rx分别按照正六边形网格定位。基于该模型,我们首先推导出系统中所有TX-RX链路的信道脉冲响应(CIRs)的表达式。然后,我们为rx提供了最大似然(ML)决策规则,并表明它减少到基于阈值的检测器。我们推导了相应的检测阈值的解析表达式,它取决于MC通道的统计和IUI的统计。此外,我们还推导出了单传输链路误码率和可实现率的解析表达式。最后,我们提出了一个新的性能指标,我们称之为面积率效率(ARE),它捕获了用户密度和IUI之间的权衡。ARE描述了给定的TX和RX区域用于信息传输的效率,并以每个区域单位的比特数表示。我们证明了存在一个最优的用户密度来最大化ARE。基于粒子和蒙特卡罗模拟的结果验证了CIR、最佳检测阈值、BER和ARE表达式的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Area Rate Efficiency in Molecular Communications
We consider a multiuser diffusion-based molecular communication (MC) system where multiple spatially distributed transmitter (TX)-receiver (RX) pairs establish point-to-point communication links employing the same type of signaling molecules. To realize the full potential of such a system, an in-depth understanding of the interplay between the spatial user density and inter-user interference (IUI) and its impact on system performance in an asymptotic regime with large numbers of users is needed. In this paper, we adopt a three-dimensional (3-D) system model with multiple independent and spatially distributed point-to-point transmission links, where both the TXs and RXs are positioned according to a regular hexagonal grid, respectively. Based on this model, we first derive an expression for the channel impulse responses (CIRs) of all TX-RX links in the system. Then, we provide the maximum likelihood (ML) decision rule for the RXs and show that it reduces to a threshold-based detector. We derive an analytical expression for the corresponding detection threshold which depends on the statistics of the MC channel and the statistics of the IUI. Furthermore, we derive an analytical expression for the bit error rate (BER) and the achievable rate of a single transmission link. Finally, we propose a new performance metric, which we refer to as area rate efficiency (ARE), that captures the tradeoff between the user density and IUI. The ARE characterizes how efficiently given TX and RX areas are used for information transmission and is given in terms of bits per area unit. We show that there exists an optimal user density for maximization of the ARE. Results from particle-based and Monte Carlo simulations validate the accuracy of the expressions derived for the CIR, optimal detection threshold, BER, and ARE.
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