Recurrent Neural Networks for Prediction

Recurrent Neural Networks for Prediction
Author: Danilo Mandic
Publisher:
Total Pages: 297
Release: 2003
Genre:
ISBN:


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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.


Recurrent Neural Networks for Prediction
Language: en
Pages: 297
Authors: Danilo Mandic
Categories:
Type: BOOK - Published: 2003 - Publisher:

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New technologies in engineering, physics and biomedicine are demanding increasingly complex methods of digital signal processing. By presenting the latest resea
Recurrent Neural Networks for Prediction
Language: en
Pages: 318
Authors: Danilo P. Mandic
Categories: Machine learning
Type: BOOK - Published: 2001 - Publisher:

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Neural networks consist of interconnected groups of neurons which function as processing units. Through the application of neural networks, the capabilities of
Recurrent Neural Networks for Short-Term Load Forecasting
Language: en
Pages: 74
Authors: Filippo Maria Bianchi
Categories: Computers
Type: BOOK - Published: 2017-11-09 - Publisher: Springer

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The key component in forecasting demand and consumption of resources in a supply network is an accurate prediction of real-valued time series. Indeed, both serv
Recurrent Neural Networks
Language: en
Pages: 426
Authors: Amit Kumar Tyagi
Categories: Computers
Type: BOOK - Published: 2022-08-08 - Publisher: CRC Press

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The text discusses recurrent neural networks for prediction and offers new insights into the learning algorithms, architectures, and stability of recurrent neur
Deep Learning for Time Series Forecasting
Language: en
Pages: 572
Authors: Jason Brownlee
Categories: Computers
Type: BOOK - Published: 2018-08-30 - Publisher: Machine Learning Mastery

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Deep learning methods offer a lot of promise for time series forecasting, such as the automatic learning of temporal dependence and the automatic handling of te