Power Adaption Over Fluctuating Two-Ray Fading Channels and Fisher-Snedecor F Fading Channels

In this thesis, we investigate the ergodic capacity under several power adaption schemes, including optimal power and rate algorithm (OPRA), optimal rate algo rithm (ORA), channel inversion (CI), and truncated channel inversion (TCI), over fluctuating two-ray (FTR) fading channels and Fisher-Snedeco...

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Main Author: Zhao, Hui
Other Authors: Alouini, Mohamed-Slim
Language:en
Published: 2019
Subjects:
Online Access:http://hdl.handle.net/10754/632511
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spelling ndltd-kaust.edu.sa-oai-repository.kaust.edu.sa-10754-6325112019-09-19T03:08:06Z Power Adaption Over Fluctuating Two-Ray Fading Channels and Fisher-Snedecor F Fading Channels Zhao, Hui Alouini, Mohamed-Slim Computer, Electrical and Mathematical Sciences and Engineering (CEMSE) Division Al-Naffouri, Tareq Y. Park, Ki-Hong Power Adaption Ergodic Capacity Fading Channels Fisher-Snedecor F Fluctuating Two-Ray In this thesis, we investigate the ergodic capacity under several power adaption schemes, including optimal power and rate algorithm (OPRA), optimal rate algo rithm (ORA), channel inversion (CI), and truncated channel inversion (TCI), over fluctuating two-ray (FTR) fading channels and Fisher-Snedecor F fading channels. After some mathematical manipulations, the exact expressions for the EC under those power adaption schemes are derived. To simplify the expressions and also get some insights from the analysis, the corresponding asymptotic expressions for the EC are also derived in order to show the slope and power offset of the EC in the high signal-to-noise ratio (SNR) region. These two metrics, i.e., slope and power offset, govern the EC behaviour in the high SNR region. Specifically, from the derived asymptotic expressions, we find that the slope of the EC of OPRA and ORA over FTR fading channels is always unity with respect to the average SNR in the log-scale in high SNRs, while the asymptotic EC of the TCI method is not a line function in the log-scale. For the Fisher-Snedecor F fading channel, the slope of asymptotic EC under OPRA, ORA, and CI (m > 1) schemes is unity in the log-scale, where m is the fading parameter. The slope of the TCI method depends on m, i.e., unity for m > 1 and m for m > 1, while the asymptotic EC of TCI is not a line function for m = 1. Finally, Monte-Carlo simulations are used to demonstrate the correctness of the derived expressions. 2019-04-28T11:48:08Z 2019-04-28T11:48:08Z 2019-04 Thesis 10.25781/KAUST-LFSFG http://hdl.handle.net/10754/632511 en
collection NDLTD
language en
sources NDLTD
topic Power Adaption
Ergodic Capacity
Fading Channels
Fisher-Snedecor F
Fluctuating Two-Ray
spellingShingle Power Adaption
Ergodic Capacity
Fading Channels
Fisher-Snedecor F
Fluctuating Two-Ray
Zhao, Hui
Power Adaption Over Fluctuating Two-Ray Fading Channels and Fisher-Snedecor F Fading Channels
description In this thesis, we investigate the ergodic capacity under several power adaption schemes, including optimal power and rate algorithm (OPRA), optimal rate algo rithm (ORA), channel inversion (CI), and truncated channel inversion (TCI), over fluctuating two-ray (FTR) fading channels and Fisher-Snedecor F fading channels. After some mathematical manipulations, the exact expressions for the EC under those power adaption schemes are derived. To simplify the expressions and also get some insights from the analysis, the corresponding asymptotic expressions for the EC are also derived in order to show the slope and power offset of the EC in the high signal-to-noise ratio (SNR) region. These two metrics, i.e., slope and power offset, govern the EC behaviour in the high SNR region. Specifically, from the derived asymptotic expressions, we find that the slope of the EC of OPRA and ORA over FTR fading channels is always unity with respect to the average SNR in the log-scale in high SNRs, while the asymptotic EC of the TCI method is not a line function in the log-scale. For the Fisher-Snedecor F fading channel, the slope of asymptotic EC under OPRA, ORA, and CI (m > 1) schemes is unity in the log-scale, where m is the fading parameter. The slope of the TCI method depends on m, i.e., unity for m > 1 and m for m > 1, while the asymptotic EC of TCI is not a line function for m = 1. Finally, Monte-Carlo simulations are used to demonstrate the correctness of the derived expressions.
author2 Alouini, Mohamed-Slim
author_facet Alouini, Mohamed-Slim
Zhao, Hui
author Zhao, Hui
author_sort Zhao, Hui
title Power Adaption Over Fluctuating Two-Ray Fading Channels and Fisher-Snedecor F Fading Channels
title_short Power Adaption Over Fluctuating Two-Ray Fading Channels and Fisher-Snedecor F Fading Channels
title_full Power Adaption Over Fluctuating Two-Ray Fading Channels and Fisher-Snedecor F Fading Channels
title_fullStr Power Adaption Over Fluctuating Two-Ray Fading Channels and Fisher-Snedecor F Fading Channels
title_full_unstemmed Power Adaption Over Fluctuating Two-Ray Fading Channels and Fisher-Snedecor F Fading Channels
title_sort power adaption over fluctuating two-ray fading channels and fisher-snedecor f fading channels
publishDate 2019
url http://hdl.handle.net/10754/632511
work_keys_str_mv AT zhaohui poweradaptionoverfluctuatingtworayfadingchannelsandfishersnedecorffadingchannels
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