云-无线接入网中基于统计CSI的速率分割功率最小化

Alaa Alameer Ahmad, H. Dahrouj, A. Chaaban, T. Al-Naffouri, A. Sezgin, J. Shamma, Mohamed-Slim Alouini
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引用次数: 2

摘要

在第五代无线网络(B5G)之后,连接设备数量和相关数据流量将出现前所未有的预期增长,因此,在确保应用程序最低服务质量(QoS)的同时,最大限度地降低移动通信网络中的功耗至关重要。本文考虑了一种云无线接入网(C-RAN)模型,其中中央处理器(CP)通过有限容量的前传链路连接到基站(BSs)。在我们的C-RAN设置上下文中,我们考虑了CP只有信道状态信息(CSI)的统计知识的实际情况。传统的无线系统采用视干扰为噪声(TIN)策略来处理网络中的干扰,而CP则采用速率分割(RS)策略,将每个用户的消息分成两部分:仅由目标用户解码的私有部分和由一部分用户解码的公共部分,其唯一目的是减轻网络中的干扰。为了最大程度地考虑信道估计误差,本文研究了在最小QoS约束下每个用户可达到遍历速率下的发射功率最小化问题,从而确定了私有消息和公共消息的波束形成矢量以及分配给所有用户的速率。所考虑的问题是随机、复杂和非凸性质的。本文通过利用样本平均近似(SAA)技术和加权最小均方误差(WMMSE)算法的迭代方法来解决问题的复杂性,以获得优化问题在渐近区域的平稳点。数值结果表明,与TIN相比,RS策略获得了更高的增益,特别是在高QoS要求的情况下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Power Minimization Using Rate Splitting With Statistical CSI in Cloud-Radio Access Networks
Minimizing the power consumption in mobile communication networks while ensuring a minimum quality of service (QoS) for applications is essential in light of the unprecedented expected increase in the number of connected devices and the associated data traffic beyond the fifth generation of wireless networks (B5G). This paper considers a cloud-radio access network (C-RAN) model where a central processor (CP) is connected to the base stations (BSs) via limited capacity fronthaul links. In the context of our C-RAN setting, we consider the practical case where the CP has only statistical knowledge of channel state information (CSI). While conventional wireless systems adopt the treating interference as noise (TIN) strategy to deal with the interference in the network, this paper instead considers that the CP applies the rate splitting (RS) strategy by dividing each user’s message into two parts: a private part to be decoded by the intended user only and a common part to be decoded by a subset of users, for the sole reason of interference mitigation in the network. To best account for the channel estimation errors, this paper addresses the problem of transmit power minimization under minimum QoS constraints on the achievable ergodic rate per user, so as to determine the beamforming vectors of the private and common messages as well as the rate allocated to all the users. The considered problem is of stochastic, complex, and non-convex nature. This paper addresses the problem intricacies through an iterative approach that leverages both the sample average approximation (SAA) technique and the weighted minimum mean squared error (WMMSE) algorithm to obtain a stationary point of the optimization problem in the asymptotic regime. The numerical results demonstrate the gain achieved with the RS strategy as compared to TIN, especially under high QoS requirements.
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