Downlink Multi-User MIMO Precoding Design Via Signal-Over-Leakage Capacity

We study the linear precoder design problem in downlink multiuser MIMO (MU-MIMO). We first analyze the leakage-based precoder design under a full multiplexing constraint, which maximizes the signal-to-leakage-and-noise ratio (SLNR) for each individual user. We prove that the SLNR-optimal multistream...

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Main Author: Cong Shen
Format: Article
Language:English
Published: IEEE 2018-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8231123/
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spelling doaj-3cc945a4d84844d8bbbd9376c3ffe8402021-03-29T20:31:59ZengIEEEIEEE Access2169-35362018-01-0162812282410.1109/ACCESS.2017.27853478231123Downlink Multi-User MIMO Precoding Design Via Signal-Over-Leakage CapacityCong Shen0https://orcid.org/0000-0002-3148-4453School of Information Science and Technology, University of Science and Technology of China, Hefei, ChinaWe study the linear precoder design problem in downlink multiuser MIMO (MU-MIMO). We first analyze the leakage-based precoder design under a full multiplexing constraint, which maximizes the signal-to-leakage-and-noise ratio (SLNR) for each individual user. We prove that the SLNR-optimal multistream precoder always maximizes the SLNR via essentially concentrating all the available transmit power on a single data stream, regardless of the rank constraint. We then propose a novel design criterion, called signal-over-leakage capacity (SLC), which corresponds to the achievable rate difference between a virtual signal-only link and a virtual interference-only link, for each individual user. We completely solve the SLC maximization problem and provide a closed-form optimal solution, which distributes the transmit power among multiple data streams, and thus better utilizes the available spatial degrees of freedom in an MU-MIMO system. Numerical experimental results are provided to corroborate the analysis.https://ieeexplore.ieee.org/document/8231123/MIMOradio transmitters
collection DOAJ
language English
format Article
sources DOAJ
author Cong Shen
spellingShingle Cong Shen
Downlink Multi-User MIMO Precoding Design Via Signal-Over-Leakage Capacity
IEEE Access
MIMO
radio transmitters
author_facet Cong Shen
author_sort Cong Shen
title Downlink Multi-User MIMO Precoding Design Via Signal-Over-Leakage Capacity
title_short Downlink Multi-User MIMO Precoding Design Via Signal-Over-Leakage Capacity
title_full Downlink Multi-User MIMO Precoding Design Via Signal-Over-Leakage Capacity
title_fullStr Downlink Multi-User MIMO Precoding Design Via Signal-Over-Leakage Capacity
title_full_unstemmed Downlink Multi-User MIMO Precoding Design Via Signal-Over-Leakage Capacity
title_sort downlink multi-user mimo precoding design via signal-over-leakage capacity
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2018-01-01
description We study the linear precoder design problem in downlink multiuser MIMO (MU-MIMO). We first analyze the leakage-based precoder design under a full multiplexing constraint, which maximizes the signal-to-leakage-and-noise ratio (SLNR) for each individual user. We prove that the SLNR-optimal multistream precoder always maximizes the SLNR via essentially concentrating all the available transmit power on a single data stream, regardless of the rank constraint. We then propose a novel design criterion, called signal-over-leakage capacity (SLC), which corresponds to the achievable rate difference between a virtual signal-only link and a virtual interference-only link, for each individual user. We completely solve the SLC maximization problem and provide a closed-form optimal solution, which distributes the transmit power among multiple data streams, and thus better utilizes the available spatial degrees of freedom in an MU-MIMO system. Numerical experimental results are provided to corroborate the analysis.
topic MIMO
radio transmitters
url https://ieeexplore.ieee.org/document/8231123/
work_keys_str_mv AT congshen downlinkmultiusermimoprecodingdesignviasignaloverleakagecapacity
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