1. Haykin S. Cognitive radio: brain-empowered wireless communications. IEEE Journal on Selected Areas in Communications, 2005, 23(2): 201-220
2. Akyildiz I F, Lee W Y, Vuran M C, et al. Next generation/dynamic spectrum access/cognitive radio wireless networks: a survey. Computer Networks, 2006, 50(13): 2127-2159
3. Huang X L, Wang G, Hu F. Multitask spectrum sensing in cognitive radio networks via spatiotemporal data mining. IEEE Transactions on Vehicular Technology, 2013, 62(2): 809-823
4. Li M L, Yuan C W, Li L, et al. Analysis of secondary throughput and optimization in cooperative spectrum sensing. The Journal of China Universities of Posts and Telecommunications, 2011, 18(4): 39-44
5. Hao X L, Cheung M H, Wong V W S, et al. Hedonic coalition formation game for cooperative spectrum sensing and channel access in cognitive radio networks. IEEE Transactions on Wireless Communications, 2012, 11(11): 3968-3979
6. Qin Z R, Li Q, Hsieh G. Defending against cooperative attacks in cooperative spectrum sensing. IEEE Transactions on Wireless Communications, 2013, 12(6): 2680-2687
7. Zhou X W, Ma J, Li G Y, et al. Probability-based combination for cooperative spectrum sensing in cognitive radio networks. Proceedings of the IEEE 2009 International Conference on Communications (ICC’09), Jun 14-18, 2009, Dresden, Germany: Piscataway, NJ, USA: IEEE, 2009: 5p
8. Song C Q, Zhang Q. Sliding-window algorithm for asynchronous cooperative sensing in wireless cognitive networks. Proceedings of the 2008 IEEE International Conference on Communications (ICC’08), May 19-23, 2008, Beijing, China. Piscataway, NJ, USA: IEEE, 2008: 3432-3436
9. Liu J, Li J, Long K P. Enhanced asynchronous cooperative spectrum sensing based on Dempster-Shafer theory. Proceedings of the 2011 IEEE Global Telecommunications Conference (GLOBECOM’11), Dec 5-9, 2011, Houston, TX, USA. Piscataway, NJ, USA: IEEE, 2011: 6p
10. Jiang C X, Beaulieu N C, Jiang C X. A novel asynchronous cooperative spectrum sensing scheme. Proceedings of the 2013 IEEE International Conference on Communications (ICC’13), Jun 9-13, 2013, Budapest, Hungary: Piscataway, NJ, USA: IEEE, 2013: 2606-2611
11. Tang L, Chen Y F, Hines E L, et al. Effect of primary user traf?c on sensing-throughput tradeoff for cognitive radios. IEEE Transactions on Wireless Communications, 2011, 10 (4): 1063-1068
12. Jiang C X, Chen Y, Liu K J R, et al. Renewal-theoretical dynamic spectrum access in cognitive radio network with unknown primary behavior. IEEE Journal on Selected Areas in Communications, 2013, 31(3): 406-416
13. Digham F F, Alouini M S, Simon M K. On the energy detection of unknown signals over fading channels. IEEE Transactions on Communications, 2007, 55(1): 21-24
14. Kim H, Shin K G. Efficient discovery of spectrum opportunities with MAC-layer sensing in cognitive radio networks. IEEE Transactions on Mobile Computing, 2008, 7(5): 533-545
15. Papoulis A, Pillai S U. Probability, random variables, and stochastic process. 4th ed. New York, NY, USA: McGraw-Hill, 2002
16. Matloff N. Renewal theory and some applications. Davis, CA, USA: University of California, Davis, 2006
17. Chair Z, Varshney P K. Optimal data fusion in multiple sensor detection systems. IEEE Transactions on Aerospace and Electronic Systems, 1986, 22(1): 98-101 |