Por favor, use este identificador para citar o enlazar este ítem: http://repositorio.ufc.br/handle/riufc/69587
Tipo: Artigo de Evento
Título : Reducing Bayes equalizer complexity: a new approach for clusters determination
Autor : Montalvao Filho, Jugurta Rosa
Mota, João César Moura
Dorizzi, Bernadette
Cavalcante, Charles Casimiro
Fecha de publicación : 1998
Editorial : International Telecommunications Symposium
Citación : CAVALCANTE, C. C. et al. Reducing Bayes equalizer complexity: a new approach for clusters determination. In: INTERNATIONAL TELECOMMUNICATIONS SYMPOSIUM, 4., 1998, São Paulo. Anais... São Paulo: IEEE, 1998. p. 428-433.
Abstract: A new strategy for channel equalization in digital communication is presented. In this approach, the clustering problem is treated analytically. We propose a systematic Bayesian classification using a Gaussian approximation of the probability density function for each cluster. The quality of the approximation depends on the number of clusters considered. We show analytically that we can obtain the Bayes equalizer performance if we use the maximum number of clusters and we can obtain the Wiener equalizer performance if we use only two clusters (binary signal case). Some computational simulations illustrate the power of the presented strategy.
URI : http://www.repositorio.ufc.br/handle/riufc/69587
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