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"Some recent time-series applications use probit models to measure the forecasting power of a set of variables. Correct inferences about the significance of the variables requires a consistent estimator of the covariance matrix of the estimated model coefficients. A potential source of inconsistency in maximum likelihood standard errors is serial correlation in the underlying disturbances, which may arise, for example, from overlapping forecasts. We discuss several practical methods for constructing probit autocorrelation-consistent standard errors, drawing on the generalized method of moments techniques of Hansen (1982), Newey-West (1987) and others, and we provide simulation evidence that these methods can work well"--Federal Reserve Bank of New York web site.
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Consistent covariance matrix estimation in probit models with autocorrelated errors
1998, Federal Reserve Bank of New York
Electronic resource
in English
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Book Details
Edition Notes
Includes bibliographical references.
Title from PDF file as viewed on 2/2/2005.
Also available in print.
System requirements: Adobe Acrobat Reader.
Mode of access: World Wide Web.
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- Created April 1, 2008
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December 13, 2020 | Edited by MARC Bot | import existing book |
July 29, 2012 | Edited by VacuumBot | Updated format '[electronic resource] /' to 'Electronic resource' |
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October 31, 2008 | Edited by ImportBot | add URIs from original MARC record |
April 1, 2008 | Created by an anonymous user | Imported from Scriblio MARC record |