Nth best relay selection with network coding in two-way relay systems
SUMMARYIn this paper, we propose an Nth best relay selection (Nth‐RS) scheme for analog network coding in two‐way relay systems. In traditional two‐way single‐relay selection schemes, only the best one is selected to forward network‐coded signals. However, in practical applications, the best relay m...
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| Vydáno v: | International journal of communication systems Ročník 27; číslo 5; s. 763 - 775 |
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| Jazyk: | angličtina |
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Chichester, UK
John Wiley & Sons, Ltd
01.05.2014
Wiley Subscription Services, Inc |
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| ISSN: | 1074-5351, 1099-1131 |
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| Abstract | SUMMARYIn this paper, we propose an Nth best relay selection (Nth‐RS) scheme for analog network coding in two‐way relay systems. In traditional two‐way single‐relay selection schemes, only the best one is selected to forward network‐coded signals. However, in practical applications, the best relay may be unavailable because of the scheduling or overload constraints. In this case, we investigate a more general scheme, where the Nth best but available relay is selected. To evaluate the transmission of reliability, the expression of outage probability in exponential–integral form and its asymptotic expression in closed form are presented. Moreover, the upper bound and lower bound of outage probability are also derived. The analysis reveals that the diversity order of Nth‐RS equals to (M − N + 1), where M is the number of relay nodes, and the results are verified by simulations. In order to improve system performance, transmit power between sources and relay is optimally allocated to minimize the upper bound of outage probability under total power constraint. Simulation results show that Nth‐RS scheme with proposed power allocation can achieve substantial improvement over equal power allocation scheme. Copyright © 2012 John Wiley & Sons, Ltd.
This paper proposes an Nth best relay selection (Nth‐RS) scheme for analog network coding (ANC) in two‐way relay systems. The analysis reveals that the diversity order of Nth‐RS equals to (M − N + 1), where M is the number of relay nodes, and the results are verified by simulations. In order to improve system performance, transmit power between sources and relay is optimally allocated to minimize the upper bound of outage probability under total power constraint. |
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| AbstractList | SUMMARY In this paper, we propose an Nth best relay selection (Nth-RS) scheme for analog network coding in two-way relay systems. In traditional two-way single-relay selection schemes, only the best one is selected to forward network-coded signals. However, in practical applications, the best relay may be unavailable because of the scheduling or overload constraints. In this case, we investigate a more general scheme, where the Nth best but available relay is selected. To evaluate the transmission of reliability, the expression of outage probability in exponential-integral form and its asymptotic expression in closed form are presented. Moreover, the upper bound and lower bound of outage probability are also derived. The analysis reveals that the diversity order of Nth-RS equals to (M-N+1), where M is the number of relay nodes, and the results are verified by simulations. In order to improve system performance, transmit power between sources and relay is optimally allocated to minimize the upper bound of outage probability under total power constraint. Simulation results show that Nth-RS scheme with proposed power allocation can achieve substantial improvement over equal power allocation scheme. Copyright © 2012 John Wiley & Sons, Ltd. [PUBLICATION ABSTRACT] SUMMARYIn this paper, we propose an Nth best relay selection (Nth‐RS) scheme for analog network coding in two‐way relay systems. In traditional two‐way single‐relay selection schemes, only the best one is selected to forward network‐coded signals. However, in practical applications, the best relay may be unavailable because of the scheduling or overload constraints. In this case, we investigate a more general scheme, where the Nth best but available relay is selected. To evaluate the transmission of reliability, the expression of outage probability in exponential–integral form and its asymptotic expression in closed form are presented. Moreover, the upper bound and lower bound of outage probability are also derived. The analysis reveals that the diversity order of Nth‐RS equals to (M − N + 1), where M is the number of relay nodes, and the results are verified by simulations. In order to improve system performance, transmit power between sources and relay is optimally allocated to minimize the upper bound of outage probability under total power constraint. Simulation results show that Nth‐RS scheme with proposed power allocation can achieve substantial improvement over equal power allocation scheme. Copyright © 2012 John Wiley & Sons, Ltd. This paper proposes an Nth best relay selection (Nth‐RS) scheme for analog network coding (ANC) in two‐way relay systems. The analysis reveals that the diversity order of Nth‐RS equals to (M − N + 1), where M is the number of relay nodes, and the results are verified by simulations. In order to improve system performance, transmit power between sources and relay is optimally allocated to minimize the upper bound of outage probability under total power constraint. In this paper, we propose an Nth best relay selection (Nth-RS) scheme for analog network coding in two-way relay systems. In traditional two-way single-relay selection schemes, only the best one is selected to forward network-coded signals. However, in practical applications, the best relay may be unavailable because of the scheduling or overload constraints. In this case, we investigate a more general scheme, where the Nth best but available relay is selected. To evaluate the transmission of reliability, the expression of outage probability in exponential-integral form and its asymptotic expression in closed form are presented. Moreover, the upper bound and lower bound of outage probability are also derived. The analysis reveals that the diversity order of Nth-RS equals to (M-N+1), where M is the number of relay nodes, and the results are verified by simulations. In order to improve system performance, transmit power between sources and relay is optimally allocated to minimize the upper bound of outage probability under total power constraint. Simulation results show that Nth-RS scheme with proposed power allocation can achieve substantial improvement over equal power allocation scheme. Copyright copyright 2012 John Wiley & Sons, Ltd. This paper proposes an Nth best relay selection (Nth-RS) scheme for analog network coding (ANC) in two-way relay systems. The analysis reveals that the diversity order of Nth-RS equals to (M-N+1), where M is the number of relay nodes, and the results are verified by simulations. In order to improve system performance, transmit power between sources and relay is optimally allocated to minimize the upper bound of outage probability under total power constraint. |
| Author | Wang, Wenbo Peng, Mugen Han, Bin Zhao, Zhongyuan |
| Author_xml | – sequence: 1 givenname: Bin surname: Han fullname: Han, Bin organization: Key Laboratory of Universal Wireless Communications (Ministry of Education), Beijing University of Posts and Telecommunications, XiTuCheng Road 10, P.O. Box #93, Beijing 100876, China – sequence: 2 givenname: Wenbo surname: Wang fullname: Wang, Wenbo organization: Key Laboratory of Universal Wireless Communications (Ministry of Education), Beijing University of Posts and Telecommunications, XiTuCheng Road 10, P.O. Box #93, Beijing 100876, China – sequence: 3 givenname: Zhongyuan surname: Zhao fullname: Zhao, Zhongyuan organization: Key Laboratory of Universal Wireless Communications (Ministry of Education), Beijing University of Posts and Telecommunications, XiTuCheng Road 10, P.O. Box #93, Beijing 100876, China – sequence: 4 givenname: Mugen surname: Peng fullname: Peng, Mugen email: Correspondence to: Mugen Peng, Key Laboratory of Universal Wireless Communications (Ministry of Education), Beijing University of Posts and Telecommunications, P.O. Box #93, XiTuCheng Road 10, Beijing 100876, China., pmg@bupt.edu.cn organization: Key Laboratory of Universal Wireless Communications (Ministry of Education), Beijing University of Posts and Telecommunications, XiTuCheng Road 10, P.O. Box #93, Beijing 100876, China |
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| References | Pabst R, Walk B, Schultz D. Relay-based deployment concepts for wireless and mobile broadband radio. IEEE Communications Magazine 2004; 42(9):80-89. Ikki SS, Ahmed MH. On the Performance of cooperative-diversity networks with the Nth best-relay selection scheme. IEEE Transactions on Communications 2010; 58(11):3062-3069. Peng M, Zhang J, Wang W, Chen HH. Heterogeneous cooperative relay selection with maximal-ratio combining for multi-radio access networks. International Journal of Communication Systems 2010; 23(6):732-750. Abramowitz M, Stegun IA. Handbook of Mathematical Functions With Formulas, Graphs, and Mathematical Tables, (9th edn). Dover: New York, 1970. Peng M, Yang C, Zhao Z, Wang W, Chen HH. Cooperative network coding in relay-based IMT-advanced systems. IEEE Communications Magazine 2012; 50(4):76-84. Bahrami HR, Tho LN. Distributed BLAST with relay selection for multi-antenna AF relaying. International Journal of Communication Systems 2011; 24(4):473-482. Talwar S, Jing Y, Shahbazpanahi S. Joint relay selection and power allocation for two-way relay networks. IEEE Signal Processing Letter 2011; 18(2):91-94. Ju M, Kim IM. Relay selection with ANC and TDBC protocols in bidirectional relay networks. IEEE Transactions on Communications 2010; 58(12):3500-3511. Ahlswede R, Cai N, Li SR, Yeung RW. Network information flow. IEEE Transactions on Information Theory 2000; 46(4):1204-1217. Papoulis A. Probability, Random Variables, and Stochastic Processes, (3rd edn). McGraw-Hill: New York, 1991. Jing Y, Jafarkhani H. Single and multiple relay selection schemes and their achievable diversity order. IEEE Transactions on Wireless Communications 2009; 8(3):1414-1423. Gradshteyn IS, Ryzhik IM. Table of Integrals, Series, and Products, (5th edn). Academic: New York, 1994. Peng M, Wang W. Technologies and standards for TD-SCDMA evolutions to IMT-advanced. IEEE Communications Magazine 2009; 47(12):50-58. Peng M, Liu H, Wang W, Chen HH. Cooperative Network coding with MIMO transmission in wireless decode-and-forward relay networks. IEEE Transactions on Vehicular Technology 2010; 59(7):3577-3588. Xu N, Fu SL. On the performance of two-way relay channels using space-time codes. International Journal of Communication Systems 2011; 24(8):1002-1014. Bletsas A, Shin H, Win MZ. Cooperative communications with outage-optimal opportunistic relaying. IEEE Transactions on Wireless Communications 2007; 6(9):3450-3460. Bletsas A, Khisti A, Reed DP, Lippman A. A simple Cooperative diversity method based on network path selection. IEEE Journal on Selected Areas Communications 2006; 24(3):659-672. Anghel PA, Kaveh M. Exact symbol error probability of a cooperative network in a Rayleigh-fading environment. IEEE Transactions on Wireless Communications 2004; 3(5):1416-1421. Bletsas A, Dimitriou GA, Sahalos JN. Interference-limited opportunistic relaying with reactive sensing. IEEE Transactions on Wireless Communications 2010; 9(1):14-20. Song LY. Relay selection for two-way relaying with amplify-and-forward protocols. IEEE Transactions on Vehicular Technology 2011; 60(4):1954-1959. Song LY, Hong G, Jiao B, Debbah M. Joint relay selection and analog network coding using differential modulation in two-way relay channels. IEEE Transactions on Vehicular Technology 2010; 59(6):2932-2939. 2012; 50 2010; 23 2009; 47 2004; 42 2010; 59 2010; 58 2006; 24 2000; 46 2011; 60 2009 2004; 3 2007 2007; 6 2006 2009; 8 2011; 24 1994 1970 1991 2011; 18 2010; 9 |
| References_xml | – reference: Bletsas A, Dimitriou GA, Sahalos JN. Interference-limited opportunistic relaying with reactive sensing. IEEE Transactions on Wireless Communications 2010; 9(1):14-20. – reference: Bletsas A, Khisti A, Reed DP, Lippman A. A simple Cooperative diversity method based on network path selection. IEEE Journal on Selected Areas Communications 2006; 24(3):659-672. – reference: Song LY, Hong G, Jiao B, Debbah M. Joint relay selection and analog network coding using differential modulation in two-way relay channels. IEEE Transactions on Vehicular Technology 2010; 59(6):2932-2939. – reference: Abramowitz M, Stegun IA. Handbook of Mathematical Functions With Formulas, Graphs, and Mathematical Tables, (9th edn). Dover: New York, 1970. – reference: Gradshteyn IS, Ryzhik IM. Table of Integrals, Series, and Products, (5th edn). Academic: New York, 1994. – reference: Bahrami HR, Tho LN. Distributed BLAST with relay selection for multi-antenna AF relaying. International Journal of Communication Systems 2011; 24(4):473-482. – reference: Xu N, Fu SL. On the performance of two-way relay channels using space-time codes. International Journal of Communication Systems 2011; 24(8):1002-1014. – reference: Papoulis A. Probability, Random Variables, and Stochastic Processes, (3rd edn). McGraw-Hill: New York, 1991. – reference: Ju M, Kim IM. Relay selection with ANC and TDBC protocols in bidirectional relay networks. IEEE Transactions on Communications 2010; 58(12):3500-3511. – reference: Ahlswede R, Cai N, Li SR, Yeung RW. Network information flow. IEEE Transactions on Information Theory 2000; 46(4):1204-1217. – reference: Anghel PA, Kaveh M. Exact symbol error probability of a cooperative network in a Rayleigh-fading environment. IEEE Transactions on Wireless Communications 2004; 3(5):1416-1421. – reference: Peng M, Liu H, Wang W, Chen HH. Cooperative Network coding with MIMO transmission in wireless decode-and-forward relay networks. IEEE Transactions on Vehicular Technology 2010; 59(7):3577-3588. – reference: Bletsas A, Shin H, Win MZ. Cooperative communications with outage-optimal opportunistic relaying. IEEE Transactions on Wireless Communications 2007; 6(9):3450-3460. – reference: Talwar S, Jing Y, Shahbazpanahi S. Joint relay selection and power allocation for two-way relay networks. IEEE Signal Processing Letter 2011; 18(2):91-94. – reference: Ikki SS, Ahmed MH. On the Performance of cooperative-diversity networks with the Nth best-relay selection scheme. IEEE Transactions on Communications 2010; 58(11):3062-3069. – reference: Peng M, Wang W. Technologies and standards for TD-SCDMA evolutions to IMT-advanced. IEEE Communications Magazine 2009; 47(12):50-58. – reference: Pabst R, Walk B, Schultz D. Relay-based deployment concepts for wireless and mobile broadband radio. IEEE Communications Magazine 2004; 42(9):80-89. – reference: Jing Y, Jafarkhani H. Single and multiple relay selection schemes and their achievable diversity order. IEEE Transactions on Wireless Communications 2009; 8(3):1414-1423. – reference: Peng M, Zhang J, Wang W, Chen HH. Heterogeneous cooperative relay selection with maximal-ratio combining for multi-radio access networks. International Journal of Communication Systems 2010; 23(6):732-750. – reference: Peng M, Yang C, Zhao Z, Wang W, Chen HH. Cooperative network coding in relay-based IMT-advanced systems. IEEE Communications Magazine 2012; 50(4):76-84. – reference: Song LY. Relay selection for two-way relaying with amplify-and-forward protocols. IEEE Transactions on Vehicular Technology 2011; 60(4):1954-1959. – start-page: 1 year: 2009 end-page: 5 – volume: 24 start-page: 659 issue: 3 year: 2006 end-page: 672 article-title: A simple Cooperative diversity method based on network path selection publication-title: IEEE Journal on Selected Areas Communications – volume: 60 start-page: 1954 issue: 4 year: 2011 end-page: 1959 article-title: Relay selection for two‐way relaying with amplify‐and‐forward protocols publication-title: IEEE Transactions on Vehicular Technology – volume: 59 start-page: 3577 issue: 7 year: 2010 end-page: 3588 article-title: Cooperative Network coding with MIMO transmission in wireless decode‐and‐forward relay networks publication-title: IEEE Transactions on Vehicular Technology – volume: 59 start-page: 2932 issue: 6 year: 2010 end-page: 2939 article-title: Joint relay selection and analog network coding using differential modulation in two‐way relay channels publication-title: IEEE Transactions on Vehicular Technology – volume: 8 start-page: 1414 issue: 3 year: 2009 end-page: 1423 article-title: Single and multiple relay selection schemes and their achievable diversity order publication-title: IEEE Transactions on Wireless Communications – start-page: 63 year: 2006 end-page: 68 – volume: 42 start-page: 80 issue: 9 year: 2004 end-page: 89 article-title: Relay‐based deployment concepts for wireless and mobile broadband radio publication-title: IEEE Communications Magazine – volume: 58 start-page: 3500 issue: 12 year: 2010 end-page: 3511 article-title: Relay selection with ANC and TDBC protocols in bidirectional relay networks publication-title: IEEE Transactions on Communications – year: 1994 – start-page: 1739 year: 2007 end-page: 1747 – start-page: 397 year: 2007 end-page: 408 – volume: 3 start-page: 1416 issue: 5 year: 2004 end-page: 1421 article-title: Exact symbol error probability of a cooperative network in a Rayleigh‐fading environment publication-title: IEEE Transactions on Wireless Communications – volume: 24 start-page: 1002 issue: 8 year: 2011 end-page: 1014 article-title: On the performance of two‐way relay channels using space‐time codes publication-title: International Journal of Communication Systems – volume: 18 start-page: 91 issue: 2 year: 2011 end-page: 94 article-title: Joint relay selection and power allocation for two‐way relay networks publication-title: IEEE Signal Processing Letter – start-page: 707 year: 2007 end-page: 712 – year: 1970 – volume: 46 start-page: 1204 issue: 4 year: 2000 end-page: 1217 article-title: Network information flow publication-title: IEEE Transactions on Information Theory – volume: 9 start-page: 14 issue: 1 year: 2010 end-page: 20 article-title: Interference‐limited opportunistic relaying with reactive sensing publication-title: IEEE Transactions on Wireless Communications – volume: 23 start-page: 732 issue: 6 year: 2010 end-page: 750 article-title: Heterogeneous cooperative relay selection with maximal‐ratio combining for multi‐radio access networks publication-title: International Journal of Communication Systems – volume: 58 start-page: 3062 issue: 11 year: 2010 end-page: 3069 article-title: On the Performance of cooperative‐diversity networks with the th best‐relay selection scheme publication-title: IEEE Transactions on Communications – year: 1991 – volume: 6 start-page: 3450 issue: 9 year: 2007 end-page: 3460 article-title: Cooperative communications with outage‐optimal opportunistic relaying publication-title: IEEE Transactions on Wireless Communications – volume: 47 start-page: 50 issue: 12 year: 2009 end-page: 58 article-title: Technologies and standards for TD‐SCDMA evolutions to IMT‐advanced publication-title: IEEE Communications Magazine – volume: 50 start-page: 76 issue: 4 year: 2012 end-page: 84 article-title: Cooperative network coding in relay‐based IMT‐advanced systems publication-title: IEEE Communications Magazine – volume: 24 start-page: 473 issue: 4 year: 2011 end-page: 482 article-title: Distributed BLAST with relay selection for multi‐antenna AF relaying publication-title: International Journal of Communication Systems |
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| Snippet | SUMMARYIn this paper, we propose an Nth best relay selection (Nth‐RS) scheme for analog network coding in two‐way relay systems. In traditional two‐way... SUMMARY In this paper, we propose an Nth best relay selection (Nth-RS) scheme for analog network coding in two-way relay systems. In traditional two-way... In this paper, we propose an Nth best relay selection (Nth-RS) scheme for analog network coding in two-way relay systems. In traditional two-way single-relay... |
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| SubjectTerms | Allocations amplify and forward (AF) analog network coding (ANC) Coding Networks Outages power allocation Relay relay selection Relay systems Simulation two-way relay Upper bounds |
| Title | Nth best relay selection with network coding in two-way relay systems |
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