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贝叶斯元胞自动机×Agent-Based Cellular Automata×
领域仿真仿真
方法族Process / pipelineProcess / pipeline
起源年份2000s1986–1996
提出者Multiple contributors (Bayesian calibration of CA emerged in spatial / land-use modeling literature, 2000s–2010s)Wolfram, S.; Epstein, J. M. & Axtell, R.
类型Simulation — probabilistic rule inferenceHybrid spatial simulation
开创性文献Hosseinali, 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 ↗Wolfram, S. (2002). A New Kind of Science. Wolfram Media, Champaign, IL. ISBN: 978-1579550080
别名BCA, Bayesian CA, Probabilistic Cellular Automata (Bayesian), Bayes-calibrated CAABCA, CA-ABM, Agent-CA, Hybrid Agent-Cellular Automaton
相关66
摘要Bayesian 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.Agent-Based Cellular Automata (ABCA) is a hybrid simulation framework that integrates the local transition rules of cellular automata with the autonomous behavioral logic of agent-based modeling. Cells in a spatial grid both evolve according to neighborhood rules and host agents that perceive, decide, and act, enabling the study of complex spatial phenomena such as land-use change, disease spread, crowd dynamics, and ecosystem evolution.
ScholarGate数据集
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  2. 2 来源
  3. PUBLISHED
  1. v1
  2. 2 来源
  3. PUBLISHED

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ScholarGate方法对比: Bayesian Cellular Automata · Agent-based cellular automata. 于 2026-06-18 检索自 https://scholargate.app/zh/compare