Model confidence sets for forecasting models

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Model confidence sets for forecasting models
Peter Reinhard Hansen, Peter R ...
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Last edited by MARC Bot
December 13, 2020 | History

Model confidence sets for forecasting models

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"The paper introduces the model confidence set (MCS) and applies it to the selection of forecasting models. An MCS is a set of models that is constructed so that it will contain the "best" forecasting model, given a level of confidence. Thus, an MCS is analogous to a confidence interval for a parameter. The MCS acknowledges the limitations of the data so that uninformative data yield an MCS with many models, whereas informative data yield an MCS with only a few models. We revisit the empirical application in Stock and Watson (1999) and apply the MCS procedure to their set of inflation forecasts. In the first pre-1984 subsample we obtain an MCS that contains only a few models, notably versions of the Solow-Gordon Phillips curve. On the other hand, the second post-1984 subsample contains little information and results in a large MCS. Yet, the random walk forecast is not contained in the MCS for either of the samples. This outcome shows that the random walk forecast is inferior to inflation forecasts based on Phillips curve-like relationships"--Federal Reserve Bank of Atlanta web site.

Publish Date
Language
English

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Cover of: Model confidence sets for forecasting models
Model confidence sets for forecasting models
2005, Federal Reserve Bank of Atlanta
Electronic resource in English

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Book Details


Edition Notes

Includes bibliographical references.
Title from PDF file as viewed on 6/15/2005.
Also available in print.
System requirements: Adobe Acrobat Reader.
Mode of access: World Wide Web.

Published in
[Atlanta, Ga.]
Series
Working paper series / Federal Reserve Bank of Atlanta ;, 2005-7, Working paper series (Federal Reserve Bank of Atlanta : Online) ;, 2005-7.

Classifications

Library of Congress
HB1

The Physical Object

Format
Electronic resource

ID Numbers

Open Library
OL3478968M
LCCN
2005619261

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Download catalog record: RDF / JSON
December 13, 2020 Edited by MARC Bot import existing book
December 9, 2009 Created by WorkBot add works page