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Automates cellulaires bayésiens×Modélisation bayésienne à base d'agents×
DomaineSimulationSimulation
FamilleProcess / pipelineProcess / pipeline
Année d'origine2000s2000s–2010s
Auteur d'origineMultiple contributors (Bayesian calibration of CA emerged in spatial / land-use modeling literature, 2000s–2010s)Sunnaker et al. / Grazzini & Richiardi (among key contributors)
TypeSimulation — probabilistic rule inferenceSimulation calibration and inference framework
Source fondatriceHosseinali, F., Alesheikh, A. A., Nourian, F. (2013). Agent-based modeling of urban land-use development, case study: Simulating future scenarios of Qazvin city. Cities, 31, 105-113. DOI ↗Sunnaker, M., Busetto, A. G., Numminen, E., Corander, J., Foll, M., Dessimoz, C. (2013). Approximate Bayesian Computation. PLOS Computational Biology, 9(1), e1002803. DOI ↗
AliasBCA, Bayesian CA, Probabilistic Cellular Automata (Bayesian), Bayes-calibrated CABayesian ABM, ABC-ABM, Bayesian Calibration of ABM, Bayesian Agent Simulation
Apparentées65
RésuméBayesian Cellular Automata (BCA) couples the local-rule spatial dynamics of classical cellular automata with Bayesian inference to learn or calibrate transition probabilities from observed data. Rather than fixing rules by hand, the analyst encodes prior knowledge about how cells change state and updates those beliefs with empirical evidence, producing a posterior distribution over rule parameters that drives principled uncertainty-aware simulation.Bayesian Agent-Based Modeling integrates Bayesian statistical inference with agent-based simulation to calibrate model parameters and quantify uncertainty. Rather than fixing agent rules and parameters by assumption, this approach treats unknown parameters as probability distributions and updates them systematically against observed data, yielding a full posterior over plausible model configurations.
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ScholarGateComparer des méthodes: Bayesian Cellular Automata · Bayesian Agent-Based Modeling. Consulté le 2026-06-15 sur https://scholargate.app/fr/compare