Error Rate and Capacity Analysis for Incremental Hybrid DAF Relaying using Polar Codes

The deployment of an incremental hybrid decode‐amplify and forward relaying scheme is a promising and superior solution for cellular networks to meet ever‐growing network traffic demands. However, the selection of a suitable relaying protocol based on the signal‐to‐noise ratio threshold is important...

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Main Authors: Natarajan Madhusudhanan, Rajamanickam Venkateswari
Format: Article
Language:English
Published: Electronics and Telecommunications Research Institute (ETRI) 2018-05-01
Series:ETRI Journal
Subjects:
Online Access:https://doi.org/10.4218/etrij.2017-0189
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spelling doaj-4dabe1d02fa7489db4290ebd4656ea3d2020-11-25T02:42:40ZengElectronics and Telecommunications Research Institute (ETRI)ETRI Journal1225-64632233-73262018-05-0140329130210.4218/etrij.2017-018910.4218/etrij.2017-0189Error Rate and Capacity Analysis for Incremental Hybrid DAF Relaying using Polar CodesNatarajan MadhusudhananRajamanickam VenkateswariThe deployment of an incremental hybrid decode‐amplify and forward relaying scheme is a promising and superior solution for cellular networks to meet ever‐growing network traffic demands. However, the selection of a suitable relaying protocol based on the signal‐to‐noise ratio threshold is important in realizing an improved quality of service. In this paper, an incremental hybrid relaying protocol is proposed using polar codes. The proposed protocol achieves a better performance than existing turbo codes in terms of capacity. Simulation results show that the polar codes through an incremental hybrid decode‐amplify‐and‐forward relay can provide a 38% gain when γth(1) and γth(2) are optimal. Further, the channel capacity is improved to 17.5 b/s/Hz and 23 b/s/Hz for 2 × 2 MIMO and 4 × 4 MIMO systems, respectively. Monte Carlo simulations are carried out to achieve the optimal solution.https://doi.org/10.4218/etrij.2017-0189CapacityCooperative relayingError rate performanceIHDAF protocolPolar codes
collection DOAJ
language English
format Article
sources DOAJ
author Natarajan Madhusudhanan
Rajamanickam Venkateswari
spellingShingle Natarajan Madhusudhanan
Rajamanickam Venkateswari
Error Rate and Capacity Analysis for Incremental Hybrid DAF Relaying using Polar Codes
ETRI Journal
Capacity
Cooperative relaying
Error rate performance
IHDAF protocol
Polar codes
author_facet Natarajan Madhusudhanan
Rajamanickam Venkateswari
author_sort Natarajan Madhusudhanan
title Error Rate and Capacity Analysis for Incremental Hybrid DAF Relaying using Polar Codes
title_short Error Rate and Capacity Analysis for Incremental Hybrid DAF Relaying using Polar Codes
title_full Error Rate and Capacity Analysis for Incremental Hybrid DAF Relaying using Polar Codes
title_fullStr Error Rate and Capacity Analysis for Incremental Hybrid DAF Relaying using Polar Codes
title_full_unstemmed Error Rate and Capacity Analysis for Incremental Hybrid DAF Relaying using Polar Codes
title_sort error rate and capacity analysis for incremental hybrid daf relaying using polar codes
publisher Electronics and Telecommunications Research Institute (ETRI)
series ETRI Journal
issn 1225-6463
2233-7326
publishDate 2018-05-01
description The deployment of an incremental hybrid decode‐amplify and forward relaying scheme is a promising and superior solution for cellular networks to meet ever‐growing network traffic demands. However, the selection of a suitable relaying protocol based on the signal‐to‐noise ratio threshold is important in realizing an improved quality of service. In this paper, an incremental hybrid relaying protocol is proposed using polar codes. The proposed protocol achieves a better performance than existing turbo codes in terms of capacity. Simulation results show that the polar codes through an incremental hybrid decode‐amplify‐and‐forward relay can provide a 38% gain when γth(1) and γth(2) are optimal. Further, the channel capacity is improved to 17.5 b/s/Hz and 23 b/s/Hz for 2 × 2 MIMO and 4 × 4 MIMO systems, respectively. Monte Carlo simulations are carried out to achieve the optimal solution.
topic Capacity
Cooperative relaying
Error rate performance
IHDAF protocol
Polar codes
url https://doi.org/10.4218/etrij.2017-0189
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