نتایج جستجو برای: boltzmann machine

تعداد نتایج: 277539  

Journal: :Scholarpedia 2007

Journal: :Physical Review X 2018

Journal: :J. Parallel Distrib. Comput. 1989
Jan H. M. Korst Emile H. L. Aarts

We discuss the problem of solving (approximately) combinatorial optimization problems on a Boltzmann machine. It is shown for a number of combinatorial optimization problems how they can be mapped directly onto a Boltzmann machine by choosing appropriate connection patterns and connection strengths. In this way maximizing the consensus in the Boltzmann machine is equivalent to finding an optima...

Journal: :CoRR 2017
Takayuki Osogami

We review Boltzmann machines and energy-based models. A Boltzmann machine defines a probability distribution over binary-valued patterns. One can learn parameters of a Boltzmann machine via gradient based approaches in a way that log likelihood of data is increased. The gradient and Laplacian of a Boltzmann machine admit beautiful mathematical representations, although computing them is in gene...

2015
Linli Xu Yitan Li Yubo Wang Enhong Chen

We examine the fundamental problem of background modeling which is to model the background scenes in video sequences and segment the moving objects from the background. A novel approach is proposed based on the Restricted Boltzmann Machine (RBM) while exploiting the temporal nature of the problem. In particular, we augment the standard RBM to take a window of sequential video frames as input an...

Journal: :CoRR 2016
Giacomo Torlai Roger G. Melko

A Boltzmann machine is a stochastic neural network that has been extensively used in the layers of deep architectures for modern machine learning applications. In this paper, we develop a Boltzmann machine that is capable of modelling thermodynamic observables for physical systems in thermal equilibrium. Through unsupervised learning, we train the Boltzmann machine on data sets constructed with...

2011
Jyri J. Kivinen Christopher K. I. Williams

We develop a novel modeling framework for Boltzmann machines, augmenting each hidden unit with a latent transformation assignment variable which describes the selection of the transformed view of the canonical connection weights associated with the unit. This enables the inferences of the model to transform in response to transformed input data in a stable and predictable way, and avoids learni...

Journal: :Informatics (Basel) 2023

The dichotomy in power consumption between digital and biological information processing systems is an intriguing open question related at its core with the necessity for a more thorough understanding of thermodynamics logic computing. To contribute this regard, we put forward model that implements Boltzmann machine (BM) approach to computation through electric substrate under thermal fluctuati...

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