延迟-衰落概率约束和 F 复合衰落条件下的有效能效

Fahad Qasmi, Irfan Muhammad, Hirley Alves, Matti Latva-aho
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摘要

下一代蜂窝网络(6G)及以后的模式是机器型通信(MTC),在这种模式下,众多物联网(IoT)设备通过无线信道自主运行,无需人工干预。物联网的自主和能源密集特性突出表明,有效能效(EEE)是 6G 的关键性能指标(KPI)。然而,目前还缺乏对随机到达流量 EEE 的研究,而随机到达流量是 MTC 的基础平台。在这项工作中,我们探索了 F 复合衰落信道的独特特性,它明确了多径衰落和阴影的综合影响。此外,我们还评估了在有限块长机制和 QoS 约束条件下这种衰减的 EEE,在这种情况下,物联网应用会产生恒定和零星的流量。我们考虑了一个点对点缓冲辅助通信系统模型,其中:(1) 研究了有限块长机制下的上行链路传输;(2) 我们对接收器可用的完美信道状态信息(CSI)做了现实的假设,信道由 F 复合衰落模型表征;(3) 由于其有效性和可操作性,我们发现应用数据具有使用马尔可夫源模型计算的平均到达率。为此,我们推导出了中断概率和有效速率的精确闭式表达式,为我们的分析提供了准确的近似值。此外,我们还通过应用有效带宽和容量理论,确定了满足 QoS 约束条件的到达率和所需服务速率。结果表明,有效带宽和容量是类曲线的,为使有效带宽和容量最大化,需要在传输功率和速率之间进行权衡。单独衡量传输功率或速率的影响相当复杂,但如果同时考虑这两个变量,复杂性就会进一步增加。因此,我们提出了功率分配(PA)和速率分配(RA)优化问题,以在 QoS 约束条件下实现 EEE 最大化,并通过粒子群优化(PSO)算法对该问题进行数值求解。最后,我们结合视线和阴影参数对 EEE 性能进行了检验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effective Energy Efficiency under Delay–Outage Probability Constraints and F-Composite Fading
The paradigm of the Next Generation cellular network (6G) and beyond is machine-type communications (MTCs), where numerous Internet of Things (IoT) devices operate autonomously without human intervention over wireless channels. IoT’s autonomous and energy-intensive characteristics highlight effective energy efficiency (EEE) as a crucial key performance indicator (KPI) of 6G. However, there is a lack of investigation on the EEE of random arrival traffic, which is the underlying platform for MTCs. In this work, we explore the distinct characteristics of F-composite fading channels, which specify the combined impact of multipath fading and shadowing. Furthermore, we evaluate the EEE over such fading under a finite blocklength regime and QoS constraints where IoT applications generate constant and sporadic traffic. We consider a point-to-point buffer-aided communication system model, where (1) an uplink transmission under a finite blocklength regime is examined; (2) we make realistic assumptions regarding the perfect channel state information (CSI) available at the receiver, and the channel is characterized by the F-composite fading model; and (3) due to its effectiveness and tractability, application data are found to have an average arrival rate calculated using Markovian sources models. To this end, we derive an exact closed-form expression for outage probability and the effective rate, which provides an accurate approximation for our analysis. Moreover, we determine the arrival and required service rates that satisfy the QoS constraints by applying effective bandwidth and capacity theories. The EEE is shown to be quasiconcave, with a trade-off between the transmit power and the rate for maximising the EEE. Measuring the impact of transmission power or rate individually is quite complex, but this complexity is further intensified when both variables are considered simultaneously. Thus, we formulate power allocation (PA) and rate allocation (RA) optimisation problems individually and jointly to maximise the EEE under a QoS constraint and solve such a problem numerically through a particle swarm optimization (PSO) algorithm. Finally, we examine the EEE performance in the context of line-of-sight and shadowing parameters.
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