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Open AccessJournal ArticleDOI

Millimeter-Wave Cellular Wireless Networks: Potentials and Challenges

Sundeep Rangan, +2 more
- Vol. 102, Iss: 3, pp 366-385
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TLDR
Measurements and capacity studies are surveyed to assess mmW technology with a focus on small cell deployments in urban environments and it is shown that mmW systems can offer more than an order of magnitude increase in capacity over current state-of-the-art 4G cellular networks at current cell densities.
Abstract
Millimeter-wave (mmW) frequencies between 30 and 300 GHz are a new frontier for cellular communication that offers the promise of orders of magnitude greater bandwidths combined with further gains via beamforming and spatial multiplexing from multielement antenna arrays. This paper surveys measurements and capacity studies to assess this technology with a focus on small cell deployments in urban environments. The conclusions are extremely encouraging; measurements in New York City at 28 and 73 GHz demonstrate that, even in an urban canyon environment, significant non-line-of-sight (NLOS) outdoor, street-level coverage is possible up to approximately 200 m from a potential low-power microcell or picocell base station. In addition, based on statistical channel models from these measurements, it is shown that mmW systems can offer more than an order of magnitude increase in capacity over current state-of-the-art 4G cellular networks at current cell densities. Cellular systems, however, will need to be significantly redesigned to fully achieve these gains. Specifically, the requirement of highly directional and adaptive transmissions, directional isolation between links, and significant possibilities of outage have strong implications on multiple access, channel structure, synchronization, and receiver design. To address these challenges, the paper discusses how various technologies including adaptive beamforming, multihop relaying, heterogeneous network architectures, and carrier aggregation can be leveraged in the mmW context.

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Citations
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Journal ArticleDOI

Efficient Preamble Design Technique for Millimeter-Wave Cellular Systems with Beamforming

TL;DR: It is shown by simulations using a simple model of an mmWave cellular system that the proposed technique can obtain a significant reduction in the complexity of the CBID detection without a noticeable performance degradation, compared to the previous technique.
Proceedings ArticleDOI

Recent Trends in Millimeter Wave Communication

D. Chikhale, +1 more
TL;DR: This review paper basically enlightens opportunities and challenges to exploit available bandwidth using 5G technology to fulfill the need of customers.
Proceedings ArticleDOI

Low-Complexity Switching Network Design for Hybrid Precoding in mmWave MIMO Systems

TL;DR: The main contribution of this work consists on the proposal and evaluation of an optimization procedure based on a smart relaxation that generates the optimal hybrid precoder under a transmit power constraint, after which, the analog precoding matrix is binarized.
Proceedings ArticleDOI

A Solution to Timing Mismatches between the In-Phase and Quadrature Branches of Millimeter-Wave Transmitter and Receiver

TL;DR: Simulation results show that the proposed pilot designs for transmit and receive IQTM estimation and estimators offer an efficient solution to the IQTM problem.
Dissertation

Beamforming techniques for millimeter wave relay networks

Hatem Abbas
TL;DR: In this paper, the authors propose a method to improve the performance of the algorithm.1.10.3.0.0/1.1/1/0/0.
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Millimeter Wave Mobile Communications for 5G Cellular: It Will Work!

TL;DR: The motivation for new mm-wave cellular systems, methodology, and hardware for measurements are presented and a variety of measurement results are offered that show 28 and 38 GHz frequencies can be used when employing steerable directional antennas at base stations and mobile devices.
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Scaling Up MIMO: Opportunities and Challenges with Very Large Arrays

TL;DR: The gains in multiuser systems are even more impressive, because such systems offer the possibility to transmit simultaneously to several users and the flexibility to select what users to schedule for reception at any given point in time.
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Five disruptive technology directions for 5G

TL;DR: In this article, the authors describe five technologies that could lead to both architectural and component disruptive design changes: device-centric architectures, millimeter wave, massive MIMO, smarter devices, and native support for machine-to-machine communications.
Journal ArticleDOI

Femtocell networks: a survey

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