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Recurrent Neural Networks for Prediction
Danilo Mandic
出版
Wiley
, 2003
URL
http://books.google.com.hk/books?id=u-MZuAEACAAJ&hl=&source=gbs_api
註釋
New technologies in engineering, physics and biomedicine are demanding increasingly complex methods of digital signal processing. By presenting the latest research work the authors demonstrate how real-time recurrent neural networks (RNNs) can be implemented to expand the range of traditional signal processing techniques and to help combat the problem of prediction. Within this text neural networks are considered as massively interconnected nonlinear adaptive filters.? Analyses the relationships between RNNs and various nonlinear models and filters, and introduces spatio-temporal architectur.