Neural Fields

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Dynamic Neural Field Theory for Motion Perception

Author : Martin A. Giese
Publisher : Springer Science & Business Media
Page : 259 pages
File Size : 52,9 Mb
Release : 2012-12-06
Category : Science
ISBN : 9781461555810

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Dynamic Neural Field Theory for Motion Perception by Martin A. Giese Pdf

Dynamic Neural Field Theory for Motion Perception provides a new theoretical framework that permits a systematic analysis of the dynamic properties of motion perception. This framework uses dynamic neural fields as a key mathematical concept. The author demonstrates how neural fields can be applied for the analysis of perceptual phenomena and its underlying neural processes. Also, similar principles form a basis for the design of computer vision systems as well as the design of artificially behaving systems. The book discusses in detail the application of this theoretical approach to motion perception and will be of great interest to researchers in vision science, psychophysics, and biological visual systems.

Neural Masses and Fields: Modelling the Dynamics of Brain Activity

Author : Karl Friston
Publisher : Frontiers Media SA
Page : 238 pages
File Size : 43,6 Mb
Release : 2015-05-25
Category : Differential equations
ISBN : 9782889194278

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Neural Masses and Fields: Modelling the Dynamics of Brain Activity by Karl Friston Pdf

Biophysical modelling of brain activity has a long and illustrious history and has recently profited from technological advances that furnish neuroimaging data at an unprecedented spatiotemporal resolution. Neuronal modelling is a very active area of research, with applications ranging from the characterization of neurobiological and cognitive processes, to constructing artificial brains in silico and building brain-machine interface and neuroprosthetic devices. Biophysical modelling has always benefited from interdisciplinary interactions between different and seemingly distant fields; ranging from mathematics and engineering to linguistics and psychology. This Research Topic aims to promote such interactions by promoting papers that contribute to a deeper understanding of neural activity as measured by fMRI or electrophysiology. In general, mean field models of neural activity can be divided into two classes: neural mass and neural field models. The main difference between these classes is that field models prescribe how a quantity characterizing neural activity (such as average depolarization of a neural population) evolves over both space and time as opposed to mass models, which characterize activity over time only; by assuming that all neurons in a population are located at (approximately) the same point. This Research Topic focuses on both classes of models and considers several aspects and their relative merits that: span from synapses to the whole brain; comparisons of their predictions with EEG and MEG spectra of spontaneous brain activity; evoked responses, seizures, and fitting data - to infer brain states and map physiological parameters.

Neural Fields

Author : Stephen Coombes,Peter beim Graben,Roland Potthast,James Wright
Publisher : Springer
Page : 488 pages
File Size : 51,6 Mb
Release : 2014-06-17
Category : Mathematics
ISBN : 9783642545931

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Neural Fields by Stephen Coombes,Peter beim Graben,Roland Potthast,James Wright Pdf

Neural field theory has a long-standing tradition in the mathematical and computational neurosciences. Beginning almost 50 years ago with seminal work by Griffiths and culminating in the 1970ties with the models of Wilson and Cowan, Nunez and Amari, this important research area experienced a renaissance during the 1990ties by the groups of Ermentrout, Robinson, Bressloff, Wright and Haken. Since then, much progress has been made in both, the development of mathematical and numerical techniques and in physiological refinement und understanding. In contrast to large-scale neural network models described by huge connectivity matrices that are computationally expensive in numerical simulations, neural field models described by connectivity kernels allow for analytical treatment by means of methods from functional analysis. Thus, a number of rigorous results on the existence of bump and wave solutions or on inverse kernel construction problems are nowadays available. Moreover, neural fields provide an important interface for the coupling of neural activity to experimentally observable data, such as the electroencephalogram (EEG) or functional magnetic resonance imaging (fMRI). And finally, neural fields over rather abstract feature spaces, also called dynamic fields, found successful applications in the cognitive sciences and in robotics. Up to now, research results in neural field theory have been disseminated across a number of distinct journals from mathematics, computational neuroscience, biophysics, cognitive science and others. There is no comprehensive collection of results or reviews available yet. With our proposed book Neural Field Theory, we aim at filling this gap in the market. We received consent from some of the leading scientists in the field, who are willing to write contributions for the book, among them are two of the founding-fathers of neural field theory: Shun-ichi Amari and Jack Cowan.

Artificial Neural Networks and Machine Learning – ICANN 2023

Author : Lazaros Iliadis,Antonios Papaleonidas,Plamen Angelov,Chrisina Jayne
Publisher : Springer Nature
Page : 626 pages
File Size : 51,9 Mb
Release : 2023-09-21
Category : Computers
ISBN : 9783031442100

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Artificial Neural Networks and Machine Learning – ICANN 2023 by Lazaros Iliadis,Antonios Papaleonidas,Plamen Angelov,Chrisina Jayne Pdf

The 10-volume set LNCS 14254-14263 constitutes the proceedings of the 32nd International Conference on Artificial Neural Networks and Machine Learning, ICANN 2023, which took place in Heraklion, Crete, Greece, during September 26–29, 2023. The 426 full papers, 9 short papers and 9 abstract papers included in these proceedings were carefully reviewed and selected from 947 submissions. ICANN is a dual-track conference, featuring tracks in brain inspired computing on the one hand, and machine learning on the other, with strong cross-disciplinary interactions and applications.

Artificial Neural Networks - ICANN 2008

Author : Věra Kůrková
Publisher : Springer Science & Business Media
Page : 1012 pages
File Size : 42,5 Mb
Release : 2008
Category : Artificial intelligence
ISBN : 9783540875581

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Artificial Neural Networks - ICANN 2008 by Věra Kůrková Pdf

This two volume set LNCS 5163 and LNCS 5164 constitutes the refereed proceedings of the 18th International Conference on Artificial Neural Networks, ICANN 2008, held in Prague Czech Republic, in September 2008. The 200 revised full papers presented were carefully reviewed and selected from more than 300 submissions. The second volume is devoted to pattern recognition and data analysis, hardware and embedded systems, computational neuroscience, connectionistic cognitive science, neuroinformatics and neural dynamics. it also contains papers from two special sessions coupling, synchronies, and firing patterns: from cognition to disease, and constructive neural networks and two workshops new trends in self-organization and optimization of artificial neural networks, and adaptive mechanisms of the perception-action cycle.

Artificial Neural Networks and Machine Learning – ICANN 2017

Author : Alessandra Lintas,Stefano Rovetta,Paul F.M.J. Verschure,Alessandro E.P. Villa
Publisher : Springer
Page : 469 pages
File Size : 40,7 Mb
Release : 2017-10-20
Category : Computers
ISBN : 9783319686004

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Artificial Neural Networks and Machine Learning – ICANN 2017 by Alessandra Lintas,Stefano Rovetta,Paul F.M.J. Verschure,Alessandro E.P. Villa Pdf

The two volume set, LNCS 10613 and 10614, constitutes the proceedings of then 26th International Conference on Artificial Neural Networks, ICANN 2017, held in Alghero, Italy, in September 2017. The 128 full papers included in this volume were carefully reviewed and selected from 270 submissions. They were organized in topical sections named: From Perception to Action; From Neurons to Networks; Brain Imaging; Recurrent Neural Networks; Neuromorphic Hardware; Brain Topology and Dynamics; Neural Networks Meet Natural and Environmental Sciences; Convolutional Neural Networks; Games and Strategy; Representation and Classification; Clustering; Learning from Data Streams and Time Series; Image Processing and Medical Applications; Advances in Machine Learning. There are 63 short paper abstracts that are included in the back matter of the volume.

Artificial Neural Networks and Machine Learning - ICANN 2011

Author : Timo Honkela,Włodzisław Duch,Mark Girolami,Samuel Kaski
Publisher : Springer Science & Business Media
Page : 492 pages
File Size : 43,6 Mb
Release : 2011-06-14
Category : Computers
ISBN : 9783642217371

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Artificial Neural Networks and Machine Learning - ICANN 2011 by Timo Honkela,Włodzisław Duch,Mark Girolami,Samuel Kaski Pdf

This two volume set (LNCS 6791 and LNCS 6792) constitutes the refereed proceedings of the 21th International Conference on Artificial Neural Networks, ICANN 2011, held in Espoo, Finland, in June 2011. The 106 revised full or poster papers presented were carefully reviewed and selected from numerous submissions. ICANN 2011 had two basic tracks: brain-inspired computing and machine learning research, with strong cross-disciplinary interactions and applications.

Waves in Neural Media

Author : Paul C. Bressloff
Publisher : Springer Science & Business Media
Page : 436 pages
File Size : 54,5 Mb
Release : 2013-10-17
Category : Mathematics
ISBN : 9781461488668

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Waves in Neural Media by Paul C. Bressloff Pdf

​Waves in Neural Media: From Single Neurons to Neural Fields surveys mathematical models of traveling waves in the brain, ranging from intracellular waves in single neurons to waves of activity in large-scale brain networks. The work provides a pedagogical account of analytical methods for finding traveling wave solutions of the variety of nonlinear differential equations that arise in such models. These include regular and singular perturbation methods, weakly nonlinear analysis, Evans functions and wave stability, homogenization theory and averaging, and stochastic processes. Also covered in the text are exact methods of solution where applicable. Historically speaking, the propagation of action potentials has inspired new mathematics, particularly with regard to the PDE theory of waves in excitable media. More recently, continuum neural field models of large-scale brain networks have generated a new set of interesting mathematical questions with regard to the solution of nonlocal integro-differential equations. Advanced graduates, postdoctoral researchers and faculty working in mathematical biology, theoretical neuroscience, or applied nonlinear dynamics will find this book to be a valuable resource. The main prerequisites are an introductory graduate course on ordinary differential equations or partial differential equations, making this an accessible and unique contribution to the field of mathematical biology.

Complex-Valued Neural Networks

Author : Akira Hirose
Publisher : World Scientific
Page : 387 pages
File Size : 54,6 Mb
Release : 2003
Category : Computers
ISBN : 9789812791184

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Complex-Valued Neural Networks by Akira Hirose Pdf

In recent years, complex-valued neural networks have widened the scope of application in optoelectronics, imaging, remote sensing, quantum neural devices and systems, spatiotemporal analysis of physiological neural systems, and artificial neural information processing. In this first-ever book on complex-valued neural networks, the most active scientists at the forefront of the field describe theories and applications from various points of view to provide academic and industrial researchers with a comprehensive understanding of the fundamentals, features and prospects of the powerful complex-valued networks.

Artificial Neural Networks

Author : Petia Koprinkova-Hristova,Valeri Mladenov,Nikola K. Kasabov
Publisher : Springer
Page : 488 pages
File Size : 54,6 Mb
Release : 2014-09-02
Category : Technology & Engineering
ISBN : 9783319099033

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Artificial Neural Networks by Petia Koprinkova-Hristova,Valeri Mladenov,Nikola K. Kasabov Pdf

The book reports on the latest theories on artificial neural networks, with a special emphasis on bio-neuroinformatics methods. It includes twenty-three papers selected from among the best contributions on bio-neuroinformatics-related issues, which were presented at the International Conference on Artificial Neural Networks, held in Sofia, Bulgaria, on September 10-13, 2013 (ICANN 2013). The book covers a broad range of topics concerning the theory and applications of artificial neural networks, including recurrent neural networks, super-Turing computation and reservoir computing, double-layer vector perceptrons, nonnegative matrix factorization, bio-inspired models of cell communities, Gestalt laws, embodied theory of language understanding, saccadic gaze shifts and memory formation, and new training algorithms for Deep Boltzmann Machines, as well as dynamic neural networks and kernel machines. It also reports on new approaches to reinforcement learning, optimal control of discrete time-delay systems, new algorithms for prototype selection, and group structure discovering. Moreover, the book discusses one-class support vector machines for pattern recognition, handwritten digit recognition, time series forecasting and classification, and anomaly identification in data analytics and automated data analysis. By presenting the state-of-the-art and discussing the current challenges in the fields of artificial neural networks, bioinformatics and neuroinformatics, the book is intended to promote the implementation of new methods and improvement of existing ones, and to support advanced students, researchers and professionals in their daily efforts to identify, understand and solve a number of open questions in these fields.

Artificial Neural Networks and Machine Learning – ICANN 2016

Author : Alessandro E.P. Villa,Paolo Masulli,Antonio Javier Pons Rivero
Publisher : Springer
Page : 567 pages
File Size : 55,7 Mb
Release : 2016-08-26
Category : Computers
ISBN : 9783319447780

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Artificial Neural Networks and Machine Learning – ICANN 2016 by Alessandro E.P. Villa,Paolo Masulli,Antonio Javier Pons Rivero Pdf

The two volume set, LNCS 9886 + 9887, constitutes the proceedings of the 25th International Conference on Artificial Neural Networks, ICANN 2016, held in Barcelona, Spain, in September 2016. The 121 full papers included in this volume were carefully reviewed and selected from 227 submissions. They were organized in topical sections named: from neurons to networks; networks and dynamics; higher nervous functions; neuronal hardware; learning foundations; deep learning; classifications and forecasting; and recognition and navigation. There are 47 short paper abstracts that are included in the back matter of the volume.

Optical Neural Networks

Author : Cornelia Denz
Publisher : Springer Science & Business Media
Page : 467 pages
File Size : 41,6 Mb
Release : 2013-11-11
Category : Computers
ISBN : 9783663122722

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Optical Neural Networks by Cornelia Denz Pdf

During the next years neural networks and systems amenable to instructions will extend their influence in science and technology. A prominent point of interest in this field is assigned to optical networks: they are small and flexible, and due to their ability of parallel processing they are devoted to the construction of small systems. This monograph explains the fundamentals of optical neural networks to physicists, engineers and device constructors.

Artificial Neural Networks - ICANN 96

Author : Christoph von der Malsburg
Publisher : Springer Science & Business Media
Page : 956 pages
File Size : 41,7 Mb
Release : 1996-07-10
Category : Computers
ISBN : 3540615105

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Artificial Neural Networks - ICANN 96 by Christoph von der Malsburg Pdf

This book constitutes the refereed proceedings of the sixth International Conference on Artificial Neural Networks - ICANN 96, held in Bochum, Germany in July 1996. The 145 papers included were carefully selected from numerous submissions on the basis of at least three reviews; also included are abstracts of the six invited plenary talks. All in all, the set of papers presented reflects the state of the art in the field of ANNs. Among the topics and areas covered are a broad spectrum of theoretical aspects, applications in various fields, sensory processing, cognitive science and AI, implementations, and neurobiology.

Dynamic Interactions in Neural Networks: Models and Data

Author : Michael A. Arbib
Publisher : Springer Science & Business Media
Page : 296 pages
File Size : 54,9 Mb
Release : 1989
Category : Computers
ISBN : 0387968938

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Dynamic Interactions in Neural Networks: Models and Data by Michael A. Arbib Pdf

The study of neural networks is enjoying a great renaissance, both in computational neuroscience, the development of information processing models of living brains, and in neural computing, the use of neurally inspired concepts in the construction of "intelligent" machines. Thus the title of this volume has two interpretations: It presents models and data on the dynamic interactions occurring in the brain, and it exhibits the dynamic interactions between research in computational neuroscience and in neural computing, as scientists seek to find common principles to guide the understanding of the living brain and the design of artificial neural networks. This collection of contributions presents the current state of research, future trends and open problems in an exciting field of today's science.

Fundamentals of Artificial Neural Networks

Author : Mohamad H. Hassoun
Publisher : MIT Press
Page : 546 pages
File Size : 47,8 Mb
Release : 1995
Category : Computers
ISBN : 026208239X

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Fundamentals of Artificial Neural Networks by Mohamad H. Hassoun Pdf

A systematic account of artificial neural network paradigms that identifies fundamental concepts and major methodologies. Important results are integrated into the text in order to explain a wide range of existing empirical observations and commonly used heuristics.