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Fractional Programming for Communication Systems-Part II: Uplink Scheduling via Matching

机译:通信系统分数规划 - 第二部分:通过匹配进行上行链路调度

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摘要

This two-part paper develops novel methodologies for using fractional programming (FP) techniques to design and optimize communication systems. Part I of this paper proposes a new quadratic transform for FP and treats its application for continuous optimization problems. In this Part II of the paper, we study discrete problems, such as those involving user scheduling, which are considerably more difficult to solve. Unlike the continuous problems, discrete or mixed discrete-continuous problems normally cannot be recast as convex problems. In contrast to the common heuristic of relaxing the discrete variables, this work reformulates the original problem in an FP form amenable to distributed combinatorial optimization. The paper illustrates this methodology by tackling the important and challenging problem of uplink coordinated multicell user scheduling in wireless cellular systems. Uplink scheduling is more challenging than downlink scheduling, because uplink user scheduling decisions significantly affect the interference pattern in nearby cells. Furthermore, the discrete scheduling variable needs to be optimized jointly with continuous variables such as transmit power levels and beamformers. The main idea of the proposed FP approach is to decouple the interaction among the interfering links, thereby permitting a distributed and joint optimization of the discrete and continuous variables with provable convergence. The paper shows that the well-known weighted minimum mean-square-error (WMMSE) algorithm can also be derived from a particular use of FP; but our proposed FP-based method significantly outperforms WMMSE when discrete user scheduling variables are involved, both in term of run-time efficiency and optimizing results.
机译:这篇由两部分组成的论文开发了使用分数规划 (FP) 技术设计和优化通信系统的新方法。本文的第一部分提出了一种新的FP二次变换方法,并论述了其在连续优化问题中的应用。在本文的第二部分中,我们研究了离散问题,例如涉及用户调度的问题,这些问题的解决难度要大得多。与连续问题不同,离散或混合离散-连续问题通常不能重铸为凸问题。与放宽离散变量的常见启发式方法相比,这项工作以适合分布式组合优化的 FP 形式重新表述了原始问题。本文通过解决无线蜂窝系统中上行链路协调多小区用户调度这一重要且具有挑战性的问题来说明这种方法。上行链路调度比下行链路调度更具挑战性,因为上行链路用户调度决策会显著影响附近小区的干扰模式。此外,离散调度变量需要与连续变量(如发射功率电平和波束成形器)共同优化。所提出的FP方法的主要思想是解耦干扰链路之间的相互作用,从而允许对离散和连续变量进行分布式和联合优化,并具有可证明的收敛性。本文表明,众所周知的加权最小均方误差(WMMSE)算法也可以从FP的特定用途中推导出来;但是,当涉及离散用户调度变量时,我们提出的基于FP的方法在运行时效率和优化结果方面都明显优于WMMSE。

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