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Phân tích Tác động Nhân quả×Chuỗi thời gian cấu trúc Bayes×
Lĩnh vựcSuy luận nhân quảBayes
HọRegression modelBayesian methods
Năm ra đời20152014
Người khởi xướngKay H. Brodersen, Fabian Gallusser, Jim Koehler, Nicolas Remy, Steven L. Scott (Google)Scott & Varian (2014); Brodersen et al. (2015)
LoạiBayesian causal inference / counterfactual forecastingState-space model / Bayesian structural model
Công trình gốcBrodersen, K. H., Gallusser, F., Koehler, J., Remy, N., & Scott, S. L. (2015). Inferring causal impact using Bayesian structural time-series models. Annals of Applied Statistics, 9(1), 247-274. DOI ↗Scott, S. L. & Varian, H. R. (2014). Predicting the Present with Bayesian Structural Time Series. International Journal of Mathematical Modelling and Numerical Optimisation, 5(1/2), 4–23. DOI ↗
Tên gọi khácCausalImpact, BSTS causal inference, Bayesian causal impact, counterfactual time-series analysisBSTS, Bayesian Yapısal Zaman Serisi (BSTS), bayesian state-space model, causal impact model
Liên quan55
Tóm tắtCausal Impact Analysis, introduced by Brodersen et al. (2015) at Google, uses Bayesian structural time-series models to estimate what would have happened to an outcome had an intervention never occurred. By constructing a probabilistic counterfactual from pre-treatment data and control covariates, it quantifies point-in-time and cumulative treatment effects with full posterior uncertainty intervals.Bayesian Structural Time Series (BSTS) is a state-space modelling framework, introduced by Scott and Varian (2014), that decomposes a time series into additive components — trend, seasonality, and regression — and estimates them jointly through Bayesian inference. It underpins Google's CausalImpact library and is a powerful tool for both forecasting and counterfactual causal analysis of interventions.
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ScholarGateSo sánh phương pháp: Causal Impact Analysis · Bayesian Structural Time Series. Truy cập ngày 2026-06-17 từ https://scholargate.app/vi/compare