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Livro Impresso

Statistical Mechanics of Neural Networks



Statistical Mechanics of Neural Networks, CIENCIAS HUMANAS E SOCIAS, Springer Nature B.V.


Sinopse

Chapter 1:  Introduction

Chapter 2:  Spin Glass Models and Cavity Method



Chapter 3:  Variational Mean-Field Theory and Belief Propagation



Chapter 4:  Monte-Carlo Simulation Methods



Chapter 5:  High-Temperature Expansion Techniques



Chapter 6: Nishimori Model



Chapter 7: Random Energy Model



Chapter 8:  Statistical Mechanics of Hopfield Model



Chapter 9:  Replica Symmetry and Symmetry Breaking



Chapter 10: Statistical Mechanics of Restricted Boltzmann Machine



Chapter 11: Simplest Model of Unsupervised Learning with Binary Synapses



Chapter 12: Inherent-Symmetry Breaking in Unsupervised Learning



Chapter 13: Mean-Field Theory of Ising Perceptron



Chapter 14: Mean-Field Model of Multi-Layered Perceptron



Chapter 15: Mean-Field Theory of Dimension Reduction in Neural Networks



Chapter 16: Chaos Theory of Random Recurrent Networks



Chapter 17: Statistical Mechanics of Random Matrices



Chapter 18: Perspectives

Metadado adicionado por UmLivro em 07/01/2025

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Metadados adicionados: 07/01/2025
Última alteração: 06/01/2025

Autores e Biografia

Huang, Haiping (Autor)

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