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Markov Chain Neural Networks

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Abstract

In this work we present a modified neural network model which is capable to simulate Markov Chains. We show how to express and train such a network, how to ensure given statistical properties reflected in the training data and we demonstrate several applications where the network produces non-deterministic outcomes. One example is a random walker model, e.g. useful for simulation of Brownian motions or a natural Tic-Tac-Toe network which ensures non-deterministic game behavior.

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Publication details

DOI
10.1109/cvprw.2018.00293
OpenAlex
W2798778482
Document type
conference-paper
Language
EN
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