Innovations in Neural Information Paradigms and Applications edited by Monica Bianchini, Marco Maggini, Franco Scarselli.

This research book presents some of the most recent advances in neural information processing models including both theoretical concepts and practical applications. The contributions include: Advances in neural information processing paradigms Self organising structures Unsupervised and supervised l...

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Bibliographic Details
Corporate Author: SpringerLink (Online service)
Other Authors: Bianchini, Monica (Editor), Maggini, Marco (Editor), Scarselli, Franco (Editor)
Format: eBook
Language:English
Published: Berlin, Heidelberg : Springer Berlin Heidelberg : Imprint: Springer, 2009.
Edition:1st ed. 2009.
Series:Studies in Computational Intelligence, 247
Springer eBook Collection.
Subjects:
Online Access:Click to view e-book
Holy Cross Note:Loaded electronically.
Electronic access restricted to members of the Holy Cross Community.

MARC

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505 0 |a Advances in Neural Information Processing Paradigms -- Self-Organizing Maps for Structured Domains: Theory, Models, and Learning of Kernels -- Unsupervised and Supervised Learning of Graph Domains -- Neural Grammar Networks -- Estimates of Model Complexity in Neural-Network Learning -- Regularization and Suboptimal Solutions in Learning from Data -- Probabilistic Interpretation of Neural Networks for the Classification of Vectors, Sequences and Graphs -- Metric Learning for Prototype-Based Classification -- Bayesian Linear Combination of Neural Networks -- Credit Card Transactions, Fraud Detection, and Machine Learning: Modelling Time with LSTM Recurrent Neural Networks -- Towards Computational Modelling of Neural Multimodal Integration Based on the Superior Colliculus Concept. 
520 |a This research book presents some of the most recent advances in neural information processing models including both theoretical concepts and practical applications. The contributions include: Advances in neural information processing paradigms Self organising structures Unsupervised and supervised learning of graph domains Neural grammar networks Model complexity in neural network learning Regularization and suboptimal solutions in neural learning Neural networks for the classification of vectors, sequences and graphs Metric learning for prototype-based classification Ensembles of neural networks Fraud detection using machine learning Computational modelling of neural multimodal integration This book is directed to the researchers, graduate students, professors and practitioner interested in recent advances in neural information processing paradigms and applications. 
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