We propose in this paper a new prediction paradigm, which is based on filter banks for subband decomposition of the sequences to be predicted. Filter banks allow the implementation of a parallel computing system, taking the advantage of a faster and more accurate implementation. In particular, we introduce a novel subband decomposition method yielding baseband sequences that are easier to be predicted. The core of the prediction system is based on a neural model, which is trained for each subband using specific embedding techniques. The latter are used in order to optimize the prediction performances when dealing with real-world data sequences, which often possess a chaotic behavior. © 2006 IEEE.
Baseband filter banks for neural prediction / Panella, Massimo; Rizzi, Antonello. - ELETTRONICO. - CD-ROM:(2006), pp. 1-6. (Intervento presentato al convegno International Conference on Computational Intelligence for Modelling, Control and Automation & International Conference on Intelligent Agents, Web Technologies and Internet Commerce tenutosi a Sydney; Australia nel 28 novembre-01 dicembre 2006) [10.1109/CIMCA.2006.57].
Baseband filter banks for neural prediction
PANELLA, Massimo;RIZZI, Antonello
2006
Abstract
We propose in this paper a new prediction paradigm, which is based on filter banks for subband decomposition of the sequences to be predicted. Filter banks allow the implementation of a parallel computing system, taking the advantage of a faster and more accurate implementation. In particular, we introduce a novel subband decomposition method yielding baseband sequences that are easier to be predicted. The core of the prediction system is based on a neural model, which is trained for each subband using specific embedding techniques. The latter are used in order to optimize the prediction performances when dealing with real-world data sequences, which often possess a chaotic behavior. © 2006 IEEE.File | Dimensione | Formato | |
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