A nonparametric test for changing trends [An article from: Journal of Econometrics] Buy on Amazon
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A nonparametric test for changing trends [An article from: Journal of Econometrics]

Publisher Elsevier
8.95 USD

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Book Details
Author(s) T. Juhl, Z. Xiao
Publisher Elsevier
ISBN / ASIN B000RR7QSK
ISBN-13 978B000RR7QS1
Availability Available for download now
Marketplace United States 🇺🇸
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Description
This digital document is a journal article from Journal of Econometrics, published by Elsevier in . The article is delivered in HTML format and is available in your Amazon.com Media Library immediately after purchase. You can view it with any web browser.

Description:
Many tests of parameter change in dynamic models exhibit nonmonotonic power. An important source of the nonmonotonic power comes from the bias in estimating parameters when there is a change in the deterministic component. To avoid this bias, we propose a nonparametric test for changing trends based on nonparametrically detrended data. The tests are similar in spirit to nonparametric conditional moment tests such as Fan and Li (J. Nonparametr. Stat. 10 (1999a) 245; 11 (1999b) 251) and Zheng (J. Econometrics 75 (1996) 263). The resulting statistics have a standard normal distribution. A Monte Carlo experiment suggests that the tests have good power against changes in the deterministic component.
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