Machine Learning-Enabled Joint Antenna Selection and Precoding Design: From Offline Complexity to Online Performance
Thang X. Vu, Symeon Chatzinotas, Van-Dinh Nguyen, Dinh Thai Hoang,, Diep N. Nguyen, Marco Di Renzo, Bjorn Ottersten

TL;DR
This paper introduces a learning-based joint antenna selection and precoding algorithm for multi-user MIMO systems that significantly reduces computational complexity while maintaining near-optimal performance.
Contribution
It proposes a novel deep neural network approach for antenna selection and precoding, overcoming the complexity of traditional optimization methods in real-time systems.
Findings
L-ASPA outperforms baseline schemes in sum rate.
L-ASPA reduces computation complexity by 95%.
L-ASPA maintains over 95% of optimal performance.
Abstract
We investigate the performance of multi-user multiple-antenna downlink systems in which a BS serves multiple users via a shared wireless medium. In order to fully exploit the spatial diversity while minimizing the passive energy consumed by radio frequency (RF) components, the BS is equipped with M RF chains and N antennas, where M < N. Upon receiving pilot sequences to obtain the channel state information, the BS determines the best subset of M antennas for serving the users. We propose a joint antenna selection and precoding design (JASPD) algorithm to maximize the system sum rate subject to a transmit power constraint and QoS requirements. The JASPD overcomes the non-convexity of the formulated problem via a doubly iterative algorithm, in which an inner loop successively optimizes the precoding vectors, followed by an outer loop that tries all valid antenna subsets. Although…
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Taxonomy
TopicsAdvanced MIMO Systems Optimization · Cooperative Communication and Network Coding · Antenna Design and Analysis
