Unifying Estimation and Inference for Linear Regression with Stationary and Integrated or Near-Integrated Variables
Shaoxin Hong,
Daniel J Henderson,
Jiancheng Jiang
et al.
Abstract:There is a discrepancy in the limiting distributions of least-squares estimators for stationary and integrated variables. For statistical inference, it must be decided which distribution should be used in advance. This motivates us to develop a unifying inference procedure based on weighted estimation. The asymptotic distributions of the proposed estimators are developed and a random weighting bootstrap method is proposed for constructing confidence regions. The proposed method outperforms existing methods (wi… Show more
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