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A novel center of mass method for estimation of center frequency and spectral edges in CR using filter banks
Affiliation:1. Department of Electronics, Faculty of Technology, University of Batna 2 (Mostefa Ben Boulaïd), Batna 05000, Algeria;2. Laboratory of Materials and Electronic Systems LMSE, Faculty of Sciences and Technology, University of Bordj Bou Arreridj, El Anasseur 34625, Algeria;3. Group of Telecommunications and Applied Electromagnetism, GTEMA, Federal Institute of Education Science and Technology of Paraiba, IFPB, Av. 1 de Maio, 720, João Pessoa, PB CEP 58015-430, Brazil;4. University of Toulouse, INPT, UPS, LAPLACE, ENSEEIHT, 2 Rue Charles Camichel, BP 7122, Toulouse Cedex 7 F-31071, France;1. School of Information and Communication Engineering, Dalian University of Technology, Dalian 116023, China;2. 91550 Amy, Dalian 116023, China
Abstract:In this paper, we propose a novel multistage DFT based polyphase filter bank technique using center of mass approach for estimating center frequency, detecting spectral edges and identifying spectral holes in wideband cognitive radio (CR) for efficient utilization of radio frequency spectrum. Spectral holes are identified by measuring energy at the output of individual subband of filter banks. Accuracy of spectral holes detection depends on frequency resolution of subbands and can be increased with an increase in number of DFT points, however, at the expense of computational complexity. In order to reduce complexity our algorithm starts with a coarser spectral resolution in the first stage. If a primary user appears over more than one subband, center frequency can be estimated in the first stage using proposed approach. However, if the primary user appears exclusively within a single subband, center frequency can be estimated at the second stage. For center frequency estimation, we propose a novel center of mass approach to achieve better precision, where mass is related to energy and distance is related to frequency. Exhaustive simulation results show that center frequency estimation using proposed multistage polyphase filter bank based on center of mass reduces computational complexity and has higher precision compared to conventional filter bank methods.
Keywords:Filter bank  Cognitive radio  Spectrum sensing  Center frequency  Spectral edges  Center of mass
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