A bootstrap method for identifying and evaluating a structural vector autoregression

dc.contributor.author

Demiralp, S

dc.contributor.author

Hoover, KD

dc.contributor.author

Perez, SJ

dc.date.accessioned

2010-03-09T15:42:29Z

dc.date.issued

2008-08-01

dc.description.abstract

Graph-theoretic methods of causal search based on the ideas of Pearl (2000), Spirtes et al. (2000), and others have been applied by a number of researchers to economic data, particularly by Swanson and Granger (1997) to the problem of finding a data-based contemporaneous causal order for the structural vector autoregression, rather than, as is typically done, assuming a weakly justified Choleski order. Demiralp and Hoover (2003) provided Monte Carlo evidence that such methods were effective, provided that signal strengths were sufficiently high. Unfortunately, in applications to actual data, such Monte Carlo simulations are of limited value, as the causal structure of the true data-generating process is necessarily unknown. In this paper, we present a bootstrap procedure that can be applied to actual data (i.e. without knowledge of the true causal structure). We show with an applied example and a simulation study that the procedure is an effective tool for assessing our confidence in causal orders identified by graph-theoretic search algorithms. © 2008. Blackwell Publishing Ltd and the Department of Economics, University of Oxford.

dc.format.mimetype

application/pdf

dc.identifier.eissn

1468-0084

dc.identifier.issn

0305-9049

dc.identifier.uri

https://hdl.handle.net/10161/2047

dc.language.iso

en_US

dc.publisher

Wiley

dc.relation.ispartof

Oxford Bulletin of Economics and Statistics

dc.relation.isversionof

10.1111/j.1468-0084.2007.00496.x

dc.title

A bootstrap method for identifying and evaluating a structural vector autoregression

dc.type

Journal article

pubs.begin-page

509

pubs.end-page

533

pubs.issue

4

pubs.organisational-group

Duke

pubs.organisational-group

Economics

pubs.organisational-group

Philosophy

pubs.organisational-group

Trinity College of Arts & Sciences

pubs.publication-status

Published

pubs.volume

70

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