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贝叶斯空间面板模型×Bayesian Spatial Regression×
领域空间分析空间分析
方法族Regression modelRegression model
起源年份2009–20141990s–2000s
提出者LeSage & Pace; ElhorstBanerjee, Carlin & Gelfand (foundational treatment); building on Besag (1974) for lattice priors
类型Bayesian spatial panel regressionBayesian hierarchical regression
开创性文献LeSage, J. P., & Pace, R. K. (2009). Introduction to Spatial Econometrics. CRC Press / Taylor & Francis. ISBN: 978-1420064247Banerjee, S., Carlin, B. P., & Gelfand, A. E. (2015). Hierarchical Modeling and Analysis for Spatial Data (2nd ed.). CRC Press. ISBN: 978-1439819173
别名Bayesian spatial panel, Bayesian spatial econometrics panel, BSPM, Bayesian panel spatial regressionBayesian hierarchical spatial model, BSR, Bayesian geostatistical regression, Bayesian spatial linear model
相关53
摘要The Bayesian Spatial Panel Model estimates spatial interaction effects (spatial lag, spatial error, or Durbin) in panel data using Bayesian inference via Markov Chain Monte Carlo (MCMC). It combines the ability to control for unobserved unit- and time-specific heterogeneity with principled uncertainty quantification, making it suitable for georeferenced longitudinal datasets in economics, public health, and regional science.Bayesian Spatial Regression embeds a spatially structured random effect into a regression framework and estimates all parameters — including spatial range and variance — through posterior inference rather than point estimation. It handles spatial autocorrelation, quantifies full predictive uncertainty, and accommodates small or irregular spatial datasets via hierarchical priors.
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  1. v1
  2. 2 来源
  3. PUBLISHED

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ScholarGate方法对比: Bayesian Spatial Panel Model · Bayesian Spatial Regression. 于 2026-06-15 检索自 https://scholargate.app/zh/compare