Nature-Inspired Intelligent {\alpha}-Fair Hybrid Precoding in Multiuser Massive Multiple-Input Multiple-Output Systems
Asil Koc, Tho Le-Ngoc

TL;DR
This paper introduces a nature-inspired hybrid precoding method for multi-user massive MIMO systems that optimizes fairness and sum-rate performance using intelligent algorithms, demonstrating significant improvements over benchmarks.
Contribution
It proposes a novel NI-$\alpha$HP technique applying $\alpha$-fairness in hybrid precoding, with efficient optimization via nature-inspired algorithms for multi-user mmWave MIMO systems.
Findings
Significant sum-rate and energy-efficiency improvements achieved.
Supports various fairness levels by adjusting $\alpha$.
Reduces rate gap among users with different fairness settings.
Abstract
This paper proposes a novel nature-inspired -fair hybrid precoding (NI-HP) technique for millimeter-wave multi-user massive multiple-input multiple-output systems. Unlike the existing HP literature, we propose to apply -fairness for maintaining various fairness expectations (e.g., sum-rate maximization, proportional fairness, max-min fairness, etc.). After developing the analog RF beamformer via slow time-varying angular information, the digital baseband (BB) precoder is designed via the reduced-dimensional effective channel matrix seen from the BB-stage. For the -fairness, we derive the optimal digital BB precoder expression with a set of parameters, where optimizing them is an NP-hard problem. Hence, we efficiently optimize the parameters in the digital BB precoder via five nature-inspired intelligent algorithms. Numerical results present that when the…
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Taxonomy
TopicsMicrowave Engineering and Waveguides · Millimeter-Wave Propagation and Modeling · Radio Frequency Integrated Circuit Design
