Browse > Article
http://dx.doi.org/10.1109/JCN.2014.000004

Underlay Cooperative Cognitive Networks with Imperfect Nakagami-m Fading Channel Information and Strict Transmit Power Constraint: Interference Statistics and Outage Probability Analysis  

Ho-Van, Khuong (Department of Telecommunications Engineering, HoChiMinh City University of Technology)
Sofotasios, Paschalis C. (School of Electronic and Electrical Engineering, University of Leeds)
Freear, Steven (School of Electronic and Electrical Engineering, University of Leeds)
Publication Information
Abstract
This work investigates two important performance metrics of underlay cooperative cognitive radio (CR) networks: Interference cumulative distribution function of licensed users and outage probability of unlicensed users. These metrics are thoroughly analyzed in realistic operating conditions such as imperfect fading channel information and strict transmit power constraint, which satisfies interference power constraint and maximum transmit power constraint, over Nakagami-m fading channels. Novel closed-form expressions are derived and subsequently validated extensively through comparisons with respective results from computer simulations. The proposed expressions are rather long but straightforward to handle both analytically and numerically since they are expressed in terms of well known built-in functions. In addition, the offered results provide the following technical insights: i) Channel information imperfection degrades considerably the performance of both unlicensed network in terms of OP and licensed network in terms of interference levels; ii) underlay cooperative CR networks experience the outage saturation phenomenon; iii) the probability that the interference power constraint is satisfied is relatively low and depends significantly on the corresponding fading severity conditions as well as the channel estimation quality; iv) there exists a critical performance trade-off between unlicensed and licensed networks.
Keywords
Cooperative relaying; imperfect channel information; interference statistics; multipath fading; underlay CR;
Citations & Related Records
연도 인용수 순위
  • Reference
1 C. Tellambura and A.D.S. Jayalath, "Generation of bivariate Rayleigh and Nakagami-m fading envelopes," IEEE Commun. Lett., vol. 4, pp. 170-172, May 2000.   DOI
2 J.G. Proakis, Digital Communications, 3rd ed., McGraw-Hill, 1995.
3 P. Athanasios and S.U. Pillai, Probability, Random Variables and Stochastic Process, 4th ed., McGraw Hill, 2002.
4 P.C. Sofotasios and S. Freear, "Novel expressions for the Marcum and one dimensional Q-functions," in Proc. 7th ISWCS, (York, UK), Sept. 2010.
5 FCC, Spectrum Policy Task Force Report, ET Docket 02-155, no.11, 2002.
6 T. Yucek and H. Arslan, "A survey of spectrum sensing algorithms for cognitive radio applications," IEEE Commun. Surveys & Tutorials, vol. 11, pp. 116-130, First Quarter 2009.   DOI   ScienceOn
7 L. Luo, P. Zhang, G. Zhang, and J. Qin, "Outage performance for cognitive relay networks with underlay spectrum sharing," IEEE Commun. Lett., vol. 15, pp. 710-712, July 2011.   DOI
8 Y. Guo, G. Kang, N. Zhang, W. Zhou, and P. Zhang, "Outage performance of relay-assisted cognitive-radio system under spectrum-sharing constraints," Electron. Lett., vol. 46, pp. 182-184, Jan. 2010.   DOI
9 X. Zhang, J. Xing, Z. Yan, Y. Gao, and W. Wang, "Outage performance study of cognitive relay networks with imperfect channel knowledge," IEEE Commun. Lett., vol. 17, pp. 27-30, Jan. 2013.   DOI
10 J. Chen, J. Si, Z. Li, and H. Huang, "On the performance of spectrum sharing cognitive relay networks with imperfect CSI," IEEE Commun. Lett., vol. 16, pp. 1002-1005, July 2012.   DOI
11 H. Ding, J. Ge, D. Benevides da Costa, and Z. Jiang, "Asymptotic analysis of cooperative diversity systems with relay selection in a spectrum-sharing scenario," IEEE Trans. Veh. Tech., vol. 60, pp. 457-472, Feb. 2011.   DOI
12 H.A. Suraweera, P.J. Smith, and M. Shafi, "Capacity limits and performance analysis of cognitive radio with imperfect channel knowledge," IEEE Trans. Veh. Tech., vol. 59, pp. 1811-1822, May 2010.   DOI   ScienceOn
13 I.S. Gradshteyn and I.M. Ryzhik, Table of Integrals, Series, and Products, 6th ed., San Diego, CA, 2000.
14 L. Wang, Y. Cai, and W. Yang, "On the fnite-SNR DMT of two-way AF relaying with imperfect CSI," IEEE Wire. Commun. Lett., vol. 1, pp. 161-164, June 2012.   DOI
15 M.K. Simon and M.S. Alouini, Digital Communication over Fading Channels, 2nd ed., John Wiley & Sons, 2005.
16 C. Zhong, T. Ratnarajah, and K.K. Wong, "Outage analysis of decodeand- forward cognitive dual-hop systems with the interference constraint in Nakagami-m fading channels," IEEE Trans. Veh. Tech., vol. 60, pp. 2875-2879, Jul. 2011.   DOI   ScienceOn
17 A. Nosratinia, T.E. Hunter, and A. Hedayat, "Cooperative communication in wireless networks," IEEE Commun. Mag., vol. 42, pp. 74-80, Oct. 2004.   DOI   ScienceOn
18 L. Ozarow, S. Shamai, and A. Wyner, "Information theoretic considerations for cellular mobile radio," IEEE Trans. Veh. Tech., vol. 43, pp. 359-378, May 1994.   DOI   ScienceOn
19 Z. Yan, X. Zhang, and W. Wang, "Exact outage performance of cognitive relay networks with maximum transmit power limits," IEEE Commun. Lett., vol. 15, pp. 1317-1319, Dec. 2011.   DOI
20 K. Ho-Van, "Exact outage probability of underlay cognitive cooperative networks over Rayleigh fading channels," Wireless Pers. Commun., vol. 70, pp. 1001-1009, May 2013.   DOI