UID:
almahu_9947363722902882
Format:
XXV, 852 p. 338 illus.
,
online resource.
ISBN:
9783319111797
Series Statement:
Lecture Notes in Computer Science, 8681
Content:
The book constitutes the proceedings of the 24th International Conference on Artificial Neural Networks, ICANN 2014, held in Hamburg, Germany, in September 2014. The 107 papers included in the proceedings were carefully reviewed and selected from 173 submissions. The focus of the papers is on following topics: recurrent networks; competitive learning and self-organisation; clustering and classification; trees and graphs; human-machine interaction; deep networks; theory; reinforcement learning and action; vision; supervised learning; dynamical models and time series; neuroscience; and applications.
Note:
Recurrent Networks -- Sequence Learning -- Echo State Networks -- Recurrent Network Theory -- Competitive Learning and Self-Organisation.- Clustering and Classification -- Trees and Graphs -- Human-Machine Interaction -- Deep Networks.- Theory -- Optimization -- Layered Networks -- Reinforcement Learning and Action -- Vision -- Detection and Recognition -- Invariances and Shape Recovery -- Attention and Pose Estimation -- Supervised Learning -- Ensembles -- Regression -- Classification -- Dynamical Models and Time Series -- Neuroscience -- Cortical Models -- Line Attractors and Neural Fields -- Spiking and Single Cell Models -- Applications -- Users and Social Technologies -- Demonstrations.
In:
Springer eBooks
Additional Edition:
Printed edition: ISBN 9783319111780
Language:
English
Subjects:
Computer Science
Keywords:
Konferenzschrift
DOI:
10.1007/978-3-319-11179-7
URL:
http://dx.doi.org/10.1007/978-3-319-11179-7
URL:
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