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  1. NTU Theses and Dissertations Repository
  2. 電機資訊學院
  3. 電信工程學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/37947
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DC 欄位值語言
dc.contributor.advisor李學智
dc.contributor.author"JEN-WEI, YEH"en
dc.contributor.author葉人瑋zh_TW
dc.date.accessioned2021-06-13T15:52:45Z-
dc.date.available2010-07-03
dc.date.copyright2008-07-03
dc.date.issued2008
dc.date.submitted2008-06-24
dc.identifier.citationBibliography
[1] A. J. Paulraj, D. A. Gore, R. U. Nabar, and H. A. B. H. Bolcskei, 'An overview of MIMO communications - a key to gigabit wireless,' Proceedings of the IEEE, vol. 92, pp. 198-218, 2004.
[2] A. Paulraj, R. U. Nabar, and D. Dore, Introduction to Space-Time Wireless Communications. Cambridge University Press, 2003.
[3] V. Tarokh, N. Seshadri, and A. R. Calderbank, 'Space-time codes for high data rate wireless communication: performance criterion and code construction,' Information Theory, IEEE Transactions on, vol. 44, pp. 744-765, 1998.
[4] A. Sendonaris, E. Erkip, and B. Aazhang, 'User cooperation diversity. Part I. System description,' Communications, IEEE Transactions on, vol. 51, pp. 1927-1938, 2003.
[5] A. Sendonaris, E. Erkip, and B. Aazhang, 'User cooperation diversity. Part II. Implementation aspects and performance analysis,' Communications, IEEE Transactions on, vol. 51, pp. 1939-1948, 2003.
[6] A. Scaglione and H. Yao-Win, 'Opportunistic large arrays: cooperative transmission in wireless multihop ad hoc networks to reach far distances,' Signal Processing, IEEE Transactions on, vol. 51, pp. 2082-2092, 2003.
[7] M. Janani, A. Hedayat, T. E. Hunter, and A. A. N. A. Nosratinia, 'Coded cooperation in wireless communications: space-time transmission and iterative decoding,' Signal Processing, IEEE Transactions on [see also Acoustics, Speech, and Signal Processing, IEEE Transactions on], vol. 52, pp. 362-371, 2004.
[8] A. Nosratinia, T. E. Hunter, and A. Hedayat, 'Cooperative communication in wireless networks,' Communications Magazine, IEEE, vol. 42, pp. 74-80, 2004.
[9] J. N. Laneman, D. N. C. Tse, and G. W. Wornell, “Cooperative diversity in wireless networks: Efficient protocols and outage behavior,” IEEE Trans. Inform. Theory, vol. 50, no. 12, pp. 3062–3080, Dec. 2004.
[10] R. U. Nabar, H. B
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/37947-
dc.description.abstractCooperative communications for wireless networks have gained much interest due to its ability to mitigate fading in wireless networks through achieving spatial diversity, while resolving the difficulties of installing multiple antennas on small communication terminals. In cooperative communication, relays are assigned to help a source in forwarding its information to its destination, hence forming a virtual antenna array. Hence, how to select the best relay is important and necessary since it determines the transmission quality attainable. In this thesis, we propose a predetermined relay-selection scheme and show that our predetermined relaying scheme is outage-improved.
Alamouti’s space time (ST) code and Tomlinson-Harashima Precoding (THP) Equalization are efficient schemes for the purpose of combating channel fading and interference, respectively. Consequently, the availability of channel state information (CSI) at the transmitter is a primary requirement. Unfortunately, under smoothly–varying channels, the transmitter cannot acquire complete CSI inclusive of channel gains and channel variations immediately. Hence, incomplete CSI will cause Alamouti’s ST code losing the property of orthogonality so that residual interference will occurs and increase BER. In this thesis, we propose a new THP scheme in which the transmitter merely requires channel gain information for the sake of mitigating interference in smoothly-varying channels when only partial CSI (no knowledge of channel variation) is available.
In VLSI implementations of the cooperative transceiver designs, we apply the proposed predetermined relay-selection scheme and the proposed THP to cooperative communication systems to appreciate the effect of the proposed transceiver design. The system model of the simulated configuration is first introduced. Then, floating point simulation is done to verify the performance of the new transceiver design. It should be noted that with the proposed schemes, cooperative transceiver designs can help to save the hardware cost in implementing the transmitter and receiver ICs.
en
dc.description.provenanceMade available in DSpace on 2021-06-13T15:52:45Z (GMT). No. of bitstreams: 1
ntu-97-R95943036-1.pdf: 1264407 bytes, checksum: 6b7719599136de8253370c2fa6a221cc (MD5)
Previous issue date: 2008
en
dc.description.tableofcontentsContents
Abstract - 1 -
Lists of Figures - 5 -
List of Tables - 8 -
Chapter 1 Introduction - 9 -
1.1 Research Motivation - 11 -
1.2 Research Contributions - 14 -
1.3 Thesis Organization - 15 -
Chapter 2 Implementation of Existing Cooperative Communication Systems - 17 -
2.1 Review of Relaying Schemes - 17 -
2.1.1 Decode-and-forward (DF) Relaying Scheme - 18 -
2.1.2 Amplify-and-forward (AF) Relaying Scheme - 19 -
2.1.3 Multi-node Cooperative Communication Systems - 21 -
2.2 Review of Tomlinson-Harashima Precoding (THP) - 25 -
Chapter 3 Proposed Efficiency-improved Relaying Scheme - 27 -
3.1 Models and Protocols - 27 -
3.2 Proposed Relaying Schemes - 29 -
3.2.1 The Method of Relaying Selection - 30 -
3.2.2 Proposed Decode-and-forward (DF) Relaying Scheme - 31 -
3.2.3 Proposed Amplify-and-forward (AF) Relaying Scheme - 34 -
3.3 Numerical and Simulation Results - 36 -
3.4 Appendix - 41 -
Chapter 4 Space-Time (ST) Coding and Tomlinson- Harashima Precoding (THP) for Smoothly -varying Fading Channels - 44 -
4.1 Models and Protocols - 44 -
4.2 THP for Interference Reduction - 47 -
4.2.1 THP with Partial Channel State Information (CSI) - 47 -
4.3 Numerical and Simulation Results - 53 -
Chapter 5 Proposed Transceiver Designs for Cooperative Communication Systems - 57 -
5.1 Simulation Environment of Alamouti-coded Cooperative Communication Systems - 57 -
5.2 Proposed Transceiver Design - 58 -
5.2.1 Proposed Decode-and-forward (DF) Transceiver Design - 58 -
5.2.2 Proposed Amplify-and-forward (AF) Transceiver Design - 61 -
5.3 Numerical and Simulation Results - 63 -
Chapter 6 Conclusions and Future Researches - 67 -
References - 70 -
dc.language.isoen
dc.subject合作式無線通訊zh_TW
dc.subject高性能接收器zh_TW
dc.subjectHigh-performanceen
dc.subjectTransceiveren
dc.subjectCooperative communicationsen
dc.title合作式無線通訊於高性能接收器演算法及架構設計zh_TW
dc.titleHigh-performance Transceiver Algorithms and Architectures for Cooperative Communicationsen
dc.typeThesis
dc.date.schoolyear96-2
dc.description.degree碩士
dc.contributor.oralexamcommittee陳光禎,蘇炫榮,許大山
dc.subject.keyword合作式無線通訊,高性能接收器,zh_TW
dc.subject.keywordCooperative communications,High-performance,Transceiver,en
dc.relation.page72
dc.rights.note有償授權
dc.date.accepted2008-06-24
dc.contributor.author-college電機資訊學院zh_TW
dc.contributor.author-dept電信工程學研究所zh_TW
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