Beyond 5G Baseband Processing on Epiphany Architecture

Massive Multiple Input Multiple Output (mMIMO) is a key technology for wireless communications. The concept behind the technology is using a large number of antennas at the base station which servers multiple user equipment simultaneously. The main advantage of this technology is that it provides ex...

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Main Author: Sawant, Yash
Format: Others
Language:English
Published: Högskolan i Halmstad, Akademin för informationsteknologi 2021
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:hh:diva-46139
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spelling ndltd-UPSALLA1-oai-DiVA.org-hh-461392021-12-22T06:00:14ZBeyond 5G Baseband Processing on Epiphany ArchitectureengBeyond 5G Baseband Processing on Epiphany ArchitectureSawant, YashHögskolan i Halmstad, Akademin för informationsteknologi2021Engineering and TechnologyTeknik och teknologierMassive Multiple Input Multiple Output (mMIMO) is a key technology for wireless communications. The concept behind the technology is using a large number of antennas at the base station which servers multiple user equipment simultaneously. The main advantage of this technology is that it provides excellent spectral and energy efficiency; however, at the same time, it poses significant computational demanding order to process the data. To overcome this problem various researchers have developed dedicated architectures such as three-angle complex rotation and triangular systolic array (TACR/TSA), low-complexity complex givens rotation (LC-CGR), tournament-based complex Givens rotation (T-CGR), and very large scale integration (VLSI)architectures to meet the required computational needs of the MIMOsystem. This thesis focuses on evaluating the performance of MIMOimplementation on heterogeneous many-core architecture Epiphany, how it fares against TACR/TSA, LC-CGR, T-CGR and VLSI architectures. The results obtained from the dedicated architectures TACR/TSA,LC-CGR, T-CGR, and VLSI, provide a base for comparison. To achieve this, Zero Forcing algorithm combined with Householder Transformations(HH) and Givens Rotations (GR) algorithms of QR decomposition techniques were used. The algorithms are parallelized and run simultaneously over the cores of Epiphany. The speedup for HH is12.19x with the timely execution of 114ms for the 16x16 matrix. The comparison of 16-cores Epiphany and the architectures mentioned in this thesis gives more information on why Epiphany does not currently meet the required standards to be used in MIMO systems. The future scope is to propose possible improvements in the Epiphany architecture to make it suitable for massive MIMO applications without compromising energy efficiency. Student thesisinfo:eu-repo/semantics/bachelorThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:hh:diva-46139application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Others
sources NDLTD
topic Engineering and Technology
Teknik och teknologier
spellingShingle Engineering and Technology
Teknik och teknologier
Sawant, Yash
Beyond 5G Baseband Processing on Epiphany Architecture
description Massive Multiple Input Multiple Output (mMIMO) is a key technology for wireless communications. The concept behind the technology is using a large number of antennas at the base station which servers multiple user equipment simultaneously. The main advantage of this technology is that it provides excellent spectral and energy efficiency; however, at the same time, it poses significant computational demanding order to process the data. To overcome this problem various researchers have developed dedicated architectures such as three-angle complex rotation and triangular systolic array (TACR/TSA), low-complexity complex givens rotation (LC-CGR), tournament-based complex Givens rotation (T-CGR), and very large scale integration (VLSI)architectures to meet the required computational needs of the MIMOsystem. This thesis focuses on evaluating the performance of MIMOimplementation on heterogeneous many-core architecture Epiphany, how it fares against TACR/TSA, LC-CGR, T-CGR and VLSI architectures. The results obtained from the dedicated architectures TACR/TSA,LC-CGR, T-CGR, and VLSI, provide a base for comparison. To achieve this, Zero Forcing algorithm combined with Householder Transformations(HH) and Givens Rotations (GR) algorithms of QR decomposition techniques were used. The algorithms are parallelized and run simultaneously over the cores of Epiphany. The speedup for HH is12.19x with the timely execution of 114ms for the 16x16 matrix. The comparison of 16-cores Epiphany and the architectures mentioned in this thesis gives more information on why Epiphany does not currently meet the required standards to be used in MIMO systems. The future scope is to propose possible improvements in the Epiphany architecture to make it suitable for massive MIMO applications without compromising energy efficiency.
author Sawant, Yash
author_facet Sawant, Yash
author_sort Sawant, Yash
title Beyond 5G Baseband Processing on Epiphany Architecture
title_short Beyond 5G Baseband Processing on Epiphany Architecture
title_full Beyond 5G Baseband Processing on Epiphany Architecture
title_fullStr Beyond 5G Baseband Processing on Epiphany Architecture
title_full_unstemmed Beyond 5G Baseband Processing on Epiphany Architecture
title_sort beyond 5g baseband processing on epiphany architecture
publisher Högskolan i Halmstad, Akademin för informationsteknologi
publishDate 2021
url http://urn.kb.se/resolve?urn=urn:nbn:se:hh:diva-46139
work_keys_str_mv AT sawantyash beyond5gbasebandprocessingonepiphanyarchitecture
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