Testing for signal-to-noise ratio in linear regression: a test under large or massive sample

This paper proposes a test for the signal-to-noise ratio applicable to a range of significance tests and model diagnostics in a linear regression model. It is particularly useful when sample size is large or massive, where, as a consequence, conventional tests frequently lead to inappropriate reject...

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Veröffentlicht in:Review of managerial science 2024-10, Vol.18 (10), p.3007-3024
Hauptverfasser: Kim, Jae H., Ji, Philip I.
Format: Artikel
Sprache:eng
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Zusammenfassung:This paper proposes a test for the signal-to-noise ratio applicable to a range of significance tests and model diagnostics in a linear regression model. It is particularly useful when sample size is large or massive, where, as a consequence, conventional tests frequently lead to inappropriate rejection of the null hypothesis. The test is conducted in the context of the traditional F -test, with its critical values increasing with sample size. It maintains desirable size properties under a large or massive sample size, when the null hypothesis is violated by a practically negligible margin. The test is widely applicable to many empirical studies in business and management.
ISSN:1863-6683
1863-6691
DOI:10.1007/s11846-023-00706-0