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Inference in models with adaptive learning

delete2010-04-01
delete21
PRE
AI
G
Guillaume Chevillon
M
Michael Massmann
S
Sophocles Mavroeidis *
DOI:10.1016/j.jmoneco.2010.02.003delete
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摘要

摘要

En 中文
Identification of structural parameters in models with adaptive learning can be weak, causing standard inference procedures to become unreliable. Learning also induces persistent dynamics, and this makes the distribution of estimators and test statistics non-standard. Valid inference can be conducted using the Anderson-Rubin statistic with appropriate choice of instruments. Application of this method to a typical new Keynesian sticky-price model with perpetual learning demonstrates its usefulness in practice. (C) 2010 Elsevier B.V. All rights reserved.
Keyword:
Weak identification
Persistence
Anderson-Rubin statistic
DSGE models

期刊

Journal of Monetary Economics 封面图
Journal of Monetary Economics
IF:
4.1
论文数:
3.2K
被引数:
1.1W

机构

V
Vrije Universiteit Amsterdam
学者数:
4.2W
论文数: 3.7W
被引数: 3.7W
B
Brown University
学者数:
2.4W
论文数: 2.2W
被引数: 3.2W
E
ESSEC Business School
学者数:
440
论文数: 754
被引数: 1
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