Clustering, classification, and time series prediction by using artificial neural networks / Patricia Melin, Martha Ramirez, Oscar Castillo.

This book provides a new model for clustering, classification, and time series prediction by using artificial neural networks to computationally simulate the behavior of the cognitive functions of the brain is presented. This model focuses on the study of intelligent hybrid neural systems and their...

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Bibliographic Details
Online Access: Full Text (via Springer)
Main Authors: Melin, Patricia (Author), Ramirez, Martha (Author), Castillo, Oscar (Author)
Format: eBook
Language:English
Published: Cham : Springer, 2024.
Series:SpringerBriefs in applied sciences and technology. Computational intelligence,
Subjects:

MARC

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245 1 0 |a Clustering, classification, and time series prediction by using artificial neural networks /  |c Patricia Melin, Martha Ramirez, Oscar Castillo. 
264 1 |a Cham :  |b Springer,  |c 2024. 
300 |a 1 online resource (viii, 74 pages) :  |b illustrations (some color). 
336 |a text  |b txt  |2 rdacontent 
337 |a computer  |b c  |2 rdamedia 
338 |a volume  |b nc  |2 rdacarrier 
490 1 |a SpringerBriefs in applied sciences and technology, Computational intelligence,  |x 2625-3712 
505 0 |a 1. Introduction to Prediction with Neural Networks -- 2. Literature Review on Prediction with Neural Networks -- 3. Problem Description of Prediction with Neural Networks -- 4. Methodology for Prediction with Neural Networks5 -- Results of Prediction with Neural Networks -- 6. Discussion of Prediction Results with Neural Networks -- 7. Conclusions for Prediction with Neural Networks. 
520 |a This book provides a new model for clustering, classification, and time series prediction by using artificial neural networks to computationally simulate the behavior of the cognitive functions of the brain is presented. This model focuses on the study of intelligent hybrid neural systems and their use in time series analysis and decision support systems. Therefore, through the development of eight case studies, multiple time series related to the following problems are analyzed: traffic accidents, air quality and multiple global indicators (energy consumption, birth rate, mortality rate, population growth, inflation, unemployment, sustainable development, and quality of life). The main contribution consists of a Generalized Type-2 fuzzy integration of multiple indicators (time series) using both supervised and unsupervised neural networks and a set of Type-1, Interval Type-2, and Generalized Type-2 fuzzy systems. The obtained results show the advantages of the proposed model of Generalized Type-2 fuzzy integration of multiple time series attributes. This book is intended to be a reference for scientists and engineers interested in applying type-2 fuzzy logic techniques for solving problems in classification and prediction. We consider that this book can also be used to get novel ideas for new lines of research, or to continue the lines of research proposed by the authors of the book. 
504 |a Includes bibliogrpahical references and index. 
588 0 |a Online resource; title from PDF title page (SpringerLink, viewed October 7, 2024). 
650 0 |a Time-series analysis  |x Data processing. 
650 0 |a Neural networks (Computer science) 
700 1 |a Ramirez, Martha,  |e author. 
700 1 |a Castillo, Oscar,  |e author. 
776 0 8 |c Original  |z 3031711009  |z 9783031711008  |w (OCoLC)1449624134 
830 0 |a SpringerBriefs in applied sciences and technology.  |p Computational intelligence,  |x 2625-3712 
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