Differential STBC for OFDM based Wireless Systems

Rodríguez Díaz, Benigno

Resumen:

Broadband wireless mobile data networks are an extremely important technical topic nowadays. These networks are probably the most convenient alternative for achieving the objective of providing and increasing connectivity and Internet access. For underdeveloped countries, these networks are an excellent alternative to diminish the so-called digital gap. For developed countries, they represent an opportunity to increase services, security and comfort. Broadband wireless networks have been studied, considering their component modules, algorithms and also possibilities of interaction between them. This study was necessary to compare different technical alternatives and earn some knowledge about the related advantages and disadvantages. From this study the dominance of the Orthogonal Frequency Division Multiplexing (OFDM) transmission techniques became clear. It was also clear that multiple antenna (MIMO) systems are needed to guarantee high data rate transmission schemes. The combination between the OFDM transmission technique and multiple antenna MIMO systems is the key focus of this thesis. Robustness and bandwidth efficiency of new differential transmission techniques, improved by the use of diversities, in particular spatial diversity and the related advantages have been studied. Then the attention was focused in these areas, OFDM transmission technique in combination with a subcarrier wise processed differential and spatial diversity technique. Differential modulation schemes have the advantage that any radio channel estimation procedure can be avoided which reduces the computation complexity dramatically. As a result of this work a new class of Differential Space Time Block Codes (DSTBCs) with high performance (lower bit error rate compared to some previously published techniques) has been proposed. The introduced technique is quite flexible and has still some potential for possible improvements (new modulation schemes, new power control mechanisms, etc.). The proposed technique was extensively tested in different radio channel conditions, like AWGN, uncorrelated Rayleigh fading and WSSUS, showing always very good performance and system robustness. When it was tested in WSSUS channels, it was found that the relative improvement (compared with the use of a pure M-PSK modulation technique or another previously published technique) is still increased when the mobile terminal velocity is increased. This suggests that the proposed technique could be particularly attractive for high mobility scenarios. In order to increase the system performance, higher spatial diversity order has been analyzed by using receive diversity. In this case a combining technique for DSTBCs has been proposed, equivalent to Maximum Ratio Combining (MRC) for coherent systems. Observe that the conventional MRC for coherent systems cannot be directly applied to DSTBCs, since an incoherent demodulation is considered, thus there is no direct channel information available at the receiver. Consequently, this new combining technique for DSTBCs has been developed within this work. Finally the performance of the proposed technique in a channel coded system was analyzed, showing that in this case its use is also convenient. In this study also some information about time delay and complexity, associated with the use of convolutional channel coding, was provided, in order to judge the convenience of its use for a particular application.


Detalles Bibliográficos
2007
Differential space time block codes
OFDM
MIMO
Mobile communications
Wireless systems
Inglés
Universidad de la República
COLIBRI
http://hdl.handle.net/20.500.12008/20207
Acceso abierto
Licencia Creative Commons Atribución – No Comercial – Sin Derivadas (CC - By-NC-ND)
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author Rodríguez Díaz, Benigno
author_facet Rodríguez Díaz, Benigno
author_role author
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dc.creator.none.fl_str_mv Rodríguez Díaz, Benigno
dc.date.accessioned.none.fl_str_mv 2019-02-21T20:56:46Z
dc.date.available.none.fl_str_mv 2019-02-21T20:56:46Z
dc.date.issued.es.fl_str_mv 2007
dc.date.submitted.es.fl_str_mv 20190221
dc.description.abstract.none.fl_txt_mv Broadband wireless mobile data networks are an extremely important technical topic nowadays. These networks are probably the most convenient alternative for achieving the objective of providing and increasing connectivity and Internet access. For underdeveloped countries, these networks are an excellent alternative to diminish the so-called digital gap. For developed countries, they represent an opportunity to increase services, security and comfort. Broadband wireless networks have been studied, considering their component modules, algorithms and also possibilities of interaction between them. This study was necessary to compare different technical alternatives and earn some knowledge about the related advantages and disadvantages. From this study the dominance of the Orthogonal Frequency Division Multiplexing (OFDM) transmission techniques became clear. It was also clear that multiple antenna (MIMO) systems are needed to guarantee high data rate transmission schemes. The combination between the OFDM transmission technique and multiple antenna MIMO systems is the key focus of this thesis. Robustness and bandwidth efficiency of new differential transmission techniques, improved by the use of diversities, in particular spatial diversity and the related advantages have been studied. Then the attention was focused in these areas, OFDM transmission technique in combination with a subcarrier wise processed differential and spatial diversity technique. Differential modulation schemes have the advantage that any radio channel estimation procedure can be avoided which reduces the computation complexity dramatically. As a result of this work a new class of Differential Space Time Block Codes (DSTBCs) with high performance (lower bit error rate compared to some previously published techniques) has been proposed. The introduced technique is quite flexible and has still some potential for possible improvements (new modulation schemes, new power control mechanisms, etc.). The proposed technique was extensively tested in different radio channel conditions, like AWGN, uncorrelated Rayleigh fading and WSSUS, showing always very good performance and system robustness. When it was tested in WSSUS channels, it was found that the relative improvement (compared with the use of a pure M-PSK modulation technique or another previously published technique) is still increased when the mobile terminal velocity is increased. This suggests that the proposed technique could be particularly attractive for high mobility scenarios. In order to increase the system performance, higher spatial diversity order has been analyzed by using receive diversity. In this case a combining technique for DSTBCs has been proposed, equivalent to Maximum Ratio Combining (MRC) for coherent systems. Observe that the conventional MRC for coherent systems cannot be directly applied to DSTBCs, since an incoherent demodulation is considered, thus there is no direct channel information available at the receiver. Consequently, this new combining technique for DSTBCs has been developed within this work. Finally the performance of the proposed technique in a channel coded system was analyzed, showing that in this case its use is also convenient. In this study also some information about time delay and complexity, associated with the use of convolutional channel coding, was provided, in order to judge the convenience of its use for a particular application.
dc.identifier.citation.es.fl_str_mv RODRÍGUEZ DÍAZ, B. "Differential STBC for OFDM based Wireless Systems". Tesis de doctorado, Technische Universität Hamburg-Harburg, 2007.
dc.identifier.uri.none.fl_str_mv http://hdl.handle.net/20.500.12008/20207
dc.language.iso.none.fl_str_mv en
eng
dc.publisher.es.fl_str_mv Technische Universität Hamburg-Harburg
dc.rights.license.none.fl_str_mv Licencia Creative Commons Atribución – No Comercial – Sin Derivadas (CC - By-NC-ND)
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.none.fl_str_mv reponame:COLIBRI
instname:Universidad de la República
instacron:Universidad de la República
dc.subject.es.fl_str_mv Differential space time block codes
OFDM
MIMO
Mobile communications
Wireless systems
dc.title.none.fl_str_mv Differential STBC for OFDM based Wireless Systems
dc.type.es.fl_str_mv Tesis de doctorado
dc.type.none.fl_str_mv info:eu-repo/semantics/doctoralThesis
dc.type.version.none.fl_str_mv info:eu-repo/semantics/acceptedVersion
description Broadband wireless mobile data networks are an extremely important technical topic nowadays. These networks are probably the most convenient alternative for achieving the objective of providing and increasing connectivity and Internet access. For underdeveloped countries, these networks are an excellent alternative to diminish the so-called digital gap. For developed countries, they represent an opportunity to increase services, security and comfort. Broadband wireless networks have been studied, considering their component modules, algorithms and also possibilities of interaction between them. This study was necessary to compare different technical alternatives and earn some knowledge about the related advantages and disadvantages. From this study the dominance of the Orthogonal Frequency Division Multiplexing (OFDM) transmission techniques became clear. It was also clear that multiple antenna (MIMO) systems are needed to guarantee high data rate transmission schemes. The combination between the OFDM transmission technique and multiple antenna MIMO systems is the key focus of this thesis. Robustness and bandwidth efficiency of new differential transmission techniques, improved by the use of diversities, in particular spatial diversity and the related advantages have been studied. Then the attention was focused in these areas, OFDM transmission technique in combination with a subcarrier wise processed differential and spatial diversity technique. Differential modulation schemes have the advantage that any radio channel estimation procedure can be avoided which reduces the computation complexity dramatically. As a result of this work a new class of Differential Space Time Block Codes (DSTBCs) with high performance (lower bit error rate compared to some previously published techniques) has been proposed. The introduced technique is quite flexible and has still some potential for possible improvements (new modulation schemes, new power control mechanisms, etc.). The proposed technique was extensively tested in different radio channel conditions, like AWGN, uncorrelated Rayleigh fading and WSSUS, showing always very good performance and system robustness. When it was tested in WSSUS channels, it was found that the relative improvement (compared with the use of a pure M-PSK modulation technique or another previously published technique) is still increased when the mobile terminal velocity is increased. This suggests that the proposed technique could be particularly attractive for high mobility scenarios. In order to increase the system performance, higher spatial diversity order has been analyzed by using receive diversity. In this case a combining technique for DSTBCs has been proposed, equivalent to Maximum Ratio Combining (MRC) for coherent systems. Observe that the conventional MRC for coherent systems cannot be directly applied to DSTBCs, since an incoherent demodulation is considered, thus there is no direct channel information available at the receiver. Consequently, this new combining technique for DSTBCs has been developed within this work. Finally the performance of the proposed technique in a channel coded system was analyzed, showing that in this case its use is also convenient. In this study also some information about time delay and complexity, associated with the use of convolutional channel coding, was provided, in order to judge the convenience of its use for a particular application.
eu_rights_str_mv openAccess
format doctoralThesis
id COLIBRI_838c1e20e484d716bf74a84ec73955f4
identifier_str_mv RODRÍGUEZ DÍAZ, B. "Differential STBC for OFDM based Wireless Systems". Tesis de doctorado, Technische Universität Hamburg-Harburg, 2007.
instacron_str Universidad de la República
institution Universidad de la República
instname_str Universidad de la República
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publishDate 2007
reponame_str COLIBRI
repository.mail.fl_str_mv mabel.seroubian@seciu.edu.uy
repository.name.fl_str_mv COLIBRI - Universidad de la República
repository_id_str 4771
rights_invalid_str_mv Licencia Creative Commons Atribución – No Comercial – Sin Derivadas (CC - By-NC-ND)
spelling 2019-02-21T20:56:46Z2019-02-21T20:56:46Z200720190221RODRÍGUEZ DÍAZ, B. "Differential STBC for OFDM based Wireless Systems". Tesis de doctorado, Technische Universität Hamburg-Harburg, 2007.http://hdl.handle.net/20.500.12008/20207Broadband wireless mobile data networks are an extremely important technical topic nowadays. These networks are probably the most convenient alternative for achieving the objective of providing and increasing connectivity and Internet access. For underdeveloped countries, these networks are an excellent alternative to diminish the so-called digital gap. For developed countries, they represent an opportunity to increase services, security and comfort. Broadband wireless networks have been studied, considering their component modules, algorithms and also possibilities of interaction between them. This study was necessary to compare different technical alternatives and earn some knowledge about the related advantages and disadvantages. From this study the dominance of the Orthogonal Frequency Division Multiplexing (OFDM) transmission techniques became clear. It was also clear that multiple antenna (MIMO) systems are needed to guarantee high data rate transmission schemes. The combination between the OFDM transmission technique and multiple antenna MIMO systems is the key focus of this thesis. Robustness and bandwidth efficiency of new differential transmission techniques, improved by the use of diversities, in particular spatial diversity and the related advantages have been studied. Then the attention was focused in these areas, OFDM transmission technique in combination with a subcarrier wise processed differential and spatial diversity technique. Differential modulation schemes have the advantage that any radio channel estimation procedure can be avoided which reduces the computation complexity dramatically. As a result of this work a new class of Differential Space Time Block Codes (DSTBCs) with high performance (lower bit error rate compared to some previously published techniques) has been proposed. The introduced technique is quite flexible and has still some potential for possible improvements (new modulation schemes, new power control mechanisms, etc.). The proposed technique was extensively tested in different radio channel conditions, like AWGN, uncorrelated Rayleigh fading and WSSUS, showing always very good performance and system robustness. When it was tested in WSSUS channels, it was found that the relative improvement (compared with the use of a pure M-PSK modulation technique or another previously published technique) is still increased when the mobile terminal velocity is increased. This suggests that the proposed technique could be particularly attractive for high mobility scenarios. In order to increase the system performance, higher spatial diversity order has been analyzed by using receive diversity. In this case a combining technique for DSTBCs has been proposed, equivalent to Maximum Ratio Combining (MRC) for coherent systems. Observe that the conventional MRC for coherent systems cannot be directly applied to DSTBCs, since an incoherent demodulation is considered, thus there is no direct channel information available at the receiver. Consequently, this new combining technique for DSTBCs has been developed within this work. Finally the performance of the proposed technique in a channel coded system was analyzed, showing that in this case its use is also convenient. In this study also some information about time delay and complexity, associated with the use of convolutional channel coding, was provided, in order to judge the convenience of its use for a particular application.Made available in DSpace on 2019-02-21T20:56:46Z (GMT). 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- Universidad de la Repúblicafalse
spellingShingle Differential STBC for OFDM based Wireless Systems
Rodríguez Díaz, Benigno
Differential space time block codes
OFDM
MIMO
Mobile communications
Wireless systems
status_str acceptedVersion
title Differential STBC for OFDM based Wireless Systems
title_full Differential STBC for OFDM based Wireless Systems
title_fullStr Differential STBC for OFDM based Wireless Systems
title_full_unstemmed Differential STBC for OFDM based Wireless Systems
title_short Differential STBC for OFDM based Wireless Systems
title_sort Differential STBC for OFDM based Wireless Systems
topic Differential space time block codes
OFDM
MIMO
Mobile communications
Wireless systems
url http://hdl.handle.net/20.500.12008/20207