Confidence Interval Estimation for the Variance Parameter of Stationary Processes
Bor-Chung Chen, Robert G. Sargent
Management Science
- 주제시뮬레이션 기법 · 의사결정분석
Asymptotic confidence interval estimators of the variance parameter σ 2 = lim n → ∞ n Var((1/n) ∑ n i = 1 X i ) are described in this paper for observations X 1 , X 2 ,…,X n from a strictly stationary phi-mixing stochastic process. They are based on asymptotic properties of the standardized time series of observations from the process. The new point and interval estimators for the variance parameter are compared to the classical batch means estimator. The results show that the new estimators have asymptotic properties that clearly dominate the classical estimator. Also, asymptotic confidence interval estimators for the ratio of two variance parameters representing two independent processes are discussed.
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- 저널Management Science · 36(2) · 200–211
- 토픽Simulation Techniques and Applications · Management Science and Operations Research
- DOI10.1287/mnsc.36.2.200
- 저자Bor-Chung Chen, Robert G. Sargent