Estimation under Heteroscedasticity: A Comparative Approach Using Cross-Sectional Data
Abstract
A comparative investigation was done analytically for 4 different Estimation Techniques of a newly-designed Audit Fees model with four exogenous variables. The aim is to explore in depth the effects of the problem of heteroscedasticity in a CLRM of cross-sectional data and to determine an appropriate estimation technique(s) in the presence of such heteroscedasticity. Findings revealed that the estimates are virtually identical for three estimators: OLS, WH and NW, while the performance of the fourth estimator, GLS was found to be outstanding, as it completely eliminates the effect of heteroscedasticity by producing a “BLUE” result.
Key Words: Heteroscedasticity, Audit Fees, Exogenous variables, New-design and BLUE.
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ISSN (Paper)2224-5804 ISSN (Online)2225-0522
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