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Regression and time series model selection in small samples

Clifford M. Hurvich; Chih‐Ling Tsai · Biometrika · 1989

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A bias correction to the Akaike information criterion, AIC, is derived for regression and autoregressive time series models. The correction is of particular use when the sample size is small, or when the number of fitted parameters is a moderate to large fraction of the sample size. The corrected method, called AICC, is asymptotically efficient if the true model is infinite dimensional. Furthermore, when the true model is of finite dimension, AICC is found to provide better model order choices than any other asymptotically efficient method. Applications to nonstationary autoregressive and mixed autoregressive moving average time series models are also discussed.

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APA 7

Hurvich, C. M. & Tsai, C. (1989). Regression and time series model selection in small samples. https://doi.org/10.1093/biomet/76.2.297

MLA

Hurvich, Clifford M, and Chih‐Ling Tsai. "Regression and time series model selection in small samples." 1989. https://doi.org/10.1093/biomet/76.2.297.

Chicago

Hurvich, Clifford M. and Chih‐Ling Tsai. 1989. "Regression and time series model selection in small samples.". https://doi.org/10.1093/biomet/76.2.297.

Harvard

Hurvich, C. M. and Tsai, C. 1989, Regression and time series model selection in small samples, Biometrika, available at: https://doi.org/10.1093/biomet/76.2.297 [Accessed 9 Aug. 2026].

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Title
Regression and time series model selection in small samples
Author / contributors
Clifford M. Hurvich; Chih‐Ling Tsai
Publisher
Biometrika
Publication year
1989
Language
English

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