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Grab-n-Pull: An Optimization Framework for Fairness-Achieving Networks

机译:Grab-n-pull:公平实现网络的优化框架

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摘要

In this paper, we present an optimization framework for designing precoding (a.k.a. beamforming) signals that are instrumental in achieving a fair user performance through the networks. The precoding design problem in such scenarios can typically be formulated as a non-convex max-min fractional quadratic program. Using a penalized version of the original design problem, we derive a simplified quadratic reformulation of the problem in terms of the signal (to be designed). Each iteration of the proposed design framework consists of a combination of power method-like iterations and the Gram-Schmidt process, and as a result, enjoys a low computational cost. Moreover, the suggested approach can handle various types of signal constraints such as total-power, per-antenna power, unimodularity, or discrete-phase requirements—an advantage which is not shared by other existing approaches in the literature.
机译:在本文中,我们提供了一个优化框架,用于设计预编码(也称为波束成形)信号,这些信号有助于通过网络实现公平的用户性能。在这种情况下,预编码设计问题通常可以表述为非凸最大-最小分数二次程序。使用原始设计问题的惩罚形式,我们从信号(待设计)的角度出发,简化了问题的二次公式。所提出的设计框架的每个迭代都包含类似于幂方法的迭代和Gram-Schmidt过程的组合,因此,计算成本较低。此外,建议的方法可以处理各种类型的信号约束,例如总功率,每天线功率,单模或离散相位要求,这是文献中其他现有方法所没有的优势。

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