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Titlebook: Innovations in Bayesian Networks; Theory and Applicati Dawn E. Holmes,Lakhmi C. Jain (Professor of Knowle Book 2008 Springer-Verlag Berlin

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Kevin B. Korb,Ann E. Nicholsonnd fractalconnectivities. In the second part, we investigate partial synchronization patterns in a neuronal network and explain dynamical asymmetry arising from the hemispheric structure of the human brain. A p978-3-030-34078-0978-3-030-34076-6Series ISSN 2190-5053 Series E-ISSN 2190-5061
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Daryle Niedermayer I.S.P.nd fractalconnectivities. In the second part, we investigate partial synchronization patterns in a neuronal network and explain dynamical asymmetry arising from the hemispheric structure of the human brain. A p978-3-030-34078-0978-3-030-34076-6Series ISSN 2190-5053 Series E-ISSN 2190-5061
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Philippe Leray,Stijn Meganek,Sam Maes,Bernard Manderick
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The Causal Interpretation of Bayesian Networks,iscovered (remaining) Bayesian networks are then specifically causal, and not simply arbitrary representations of probability..There are multiple contentious issues underlying any causal interpretation of Bayesian networks. We will address the following questions:.Here we introduce a causal interpre
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Modeling the Temporal Trend of the Daily Severity of an Outbreak Using Bayesian Networks,ery limited. As far as predicting future cases, ordinarily epidemiologists simply made an educated guess as to how many people might become affected. We develop a Bayesian network model for real-time estimation of an epidemic curve, and we show results of experiments testing its accuracy.
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