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Journal ArticleDOI

Spatial-Wideband Effect in Massive MIMO with Application in mmWave Systems

TLDR
A new massive MIMO channel model is suggested that embraces both the spatial- and frequency- wideband effects, and discusses issues to design a practical massive M IMO system.
Abstract
Massive MIMO, especially in the millimeter- wave frequency bands, has been recognized as a promising technique to enhance spectrum and energy efficiency, as well as network coverage for wireless communications. Most research in massive MIMO just uses the extended conventional MIMO channel model by directly assuming that the channel dimensionality becomes large. With massive numbers of antennas, however, there exists a non-negligible propagation delay across the large array aperture, which then causes a transmitted symbol to reach different antennas with different delays, thereby rendering conventional MIMO channel models inapplicable. Such a phenomenon is known as the spatial-wideband effect in the areas of array signal processing and radar signal processing, and introduces the beam squint effect in beamforming. However, the spatial-wideband effect and the related beam squint issue are seldom studied in massive MIMO communications. To design a practical massive MIMO system, it is important to understand when the spatial-wideband effect appears and how it affects signal transmission, how the spatial-wideband effect interacts with the frequency-wideband effect (frequency selectivity), especially for multi-carrier modulations such as orthogonal frequency- division multiplexing (OFDM), and how we should re-design the transceiver. In this article we suggest a new massive MIMO channel model that embraces both the spatial- and frequency- wideband effects, and discuss these issues.

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Citations
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Journal ArticleDOI

Prospective Multiple Antenna Technologies for Beyond 5G

TL;DR: In this article, the authors survey three new multiple antenna technologies that can play key roles in beyond 5G networks: cell-free massive MIMO, beamspace massive mIMO and intelligent reflecting surfaces.
Posted Content

Prospective Multiple Antenna Technologies for Beyond 5G

TL;DR: Three new multiple antenna technologies that can play key roles in beyond 5G networks: cell-free massive MIMO, beamspace massive M IMO, and intelligent reflecting surfaces are surveyed.
Journal ArticleDOI

An Overview of Enhanced Massive MIMO With Array Signal Processing Techniques

TL;DR: In this paper, the authors present an overview of recent progress on merging array signal processing into massive MIMO communications as well as its promising future directions, and some phenomena of the beam squint effect can be better explained now with array signals processing.
Journal ArticleDOI

Beam Squint and Channel Estimation for Wideband mmWave Massive MIMO-OFDM Systems

TL;DR: A channel estimation scheme for frequency-division duplex (FDD) mmWave massive MIMO-OFDM systems with hybrid analog/digital precoding, which takes the beam squint effect into consideration is proposed and numerical results demonstrate the superiority of the proposed scheme over the conventional methods under general system configurations in mmWave communications.
Journal ArticleDOI

Channel Estimation and Hybrid Combining for Wideband Terahertz Massive MIMO Systems

TL;DR: This work introduces a low-complexity beam squint mitigation scheme based on true-time-delay and proposes a novel variant of the popular orthogonal matching pursuit (OMP) algorithm to accurately estimate the channel with low training overhead.
References
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Journal ArticleDOI

An Overview of Massive MIMO: Benefits and Challenges

TL;DR: This paper addresses the potential impact of pilot contamination caused by the use of non-orthogonal pilot sequences by users in adjacent cells, and analyzes the energy efficiency and degrees of freedom provided by massive MIMO systems to enable efficient single-carrier transmission.
Journal ArticleDOI

MIMO Precoding and Combining Solutions for Millimeter-Wave Systems

TL;DR: How beamforming and precoding are different in MIMO mmWave systems than in their lower-frequency counterparts, due to different hardware constraints and channel characteristics are explained.
Journal ArticleDOI

Millimeter-Wave Communications: Physical Channel Models, Design Considerations, Antenna Constructions, and Link-Budget

TL;DR: A survey of the mmWave propagation characteristics, channel modeling, and design guidelines, such as system and antenna design considerations for mmWave, including the link budget of the network, which are essential for mm Wave communication systems design is presented.
Journal ArticleDOI

A Unified Transmission Strategy for TDD/FDD Massive MIMO Systems With Spatial Basis Expansion Model

TL;DR: A spatial basis expansion model (SBEM) is built to represent the UL/DL channels with far fewer parameter dimensions, which significantly reduces the training overhead and feedback cost and enhances the spectral efficiency.
Journal ArticleDOI

Joint Spatial Division and Multiplexing for mm-Wave Channels

TL;DR: In this paper, the problem of user grouping for two different objectives, namely, maximizing spatial multiplexing and maximizing total received power, was formulated in a graph-theoretic framework.
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