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CONSISTENT ORDER SELECTION FOR ARFIMA PROCESSES
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CONSISTENT ORDER SELECTION FOR ARFIMA PROCESSES

Hsueh-Han Huang, Ngai Hang Chan, Kun ChenChing-Kang Ing
Annals of Statistics, 卷.50(3), 頁碼.1297-1319
06/2022

摘要

ARFIMA models Bayesian information criterion conditional heteroscedastic errors long memory and nonstationary time series order selection Statistics and Probability Statistics Probability and Uncertainty
Estimating the orders of the autoregressive fractionally integrated moving average (ARFIMA) model has been a long-standing problem in time series analysis. This paper tackles this challenge by establishing the consistency of the Bayesian information criterion (BIC) for ARFIMA models with independent errors. Since the memory parameter of the model can be any real number, this consistency result is valid for short memory, long memory and nonstationary time series. This paper further extends the consistency of the BIC to ARFIMA models with conditional heteroscedastic errors, thereby extending its applications to encompass many real-life situations. Finite-sample implications of the theoretical results are illustrated via numerical examples.

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