Accounting for uncertainty: an application of Bayesian methods to accruals models

被引:0
|
作者
Matthias Breuer
Harm H. Schütt
机构
[1] Columbia University,
[2] Tilburg University,undefined
来源
关键词
Bayes; Prediction; Accruals; Earnings management; Measurement uncertainty; C11; C53; M40;
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学科分类号
摘要
We provide an applied introduction to Bayesian estimation methods for empirical accounting research. To showcase the methods, we compare and contrast the estimation of accruals models via a Bayesian approach with the literature’s standard approach. The standard approach takes a given model of normal accruals for granted and neglects any uncertainty about the model and its parameters. By contrast, our Bayesian approach allows incorporating parameter and model uncertainty into the estimation of normal accruals. This approach can increase power and reduce false positives in tests for opportunistic earnings management as a result of better estimates of normal accruals and more robust inferences. We advocate the greater use of Bayesian methods in accounting research, especially since they can now be easily implemented in popular statistical software packages.
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页码:726 / 768
页数:42
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