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Filling in the GAAPs in Individual Analysts’ Street Earnings Forecasts

Brian Bratten (), Stephannie Larocque () and Teri Lombardi Yohn ()
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Brian Bratten: Gatton College of Business & Economics, University of Kentucky, Lexington, Kentucky 40506
Stephannie Larocque: Mendoza College of Business, University of Notre Dame, Notre Dame, Indiana 46556
Teri Lombardi Yohn: Goizueta Business School, Emory University, Atlanta, Georgia 30322

Management Science, 2023, vol. 69, issue 8, 4790-4809

Abstract: Analysts’ street earnings forecasts are sometimes based on GAAP earnings and sometimes based on non-GAAP earnings, which exclude various GAAP earnings components. Therefore, differences in analysts’ street earnings forecasts may capture differences in not only expected performance but also the earnings metric forecasted. We argue that analysts who forecast non-GAAP, rather than GAAP, street earnings are more likely to separately analyze earnings components. Consistent with this argument, we find that analysts who forecast non-GAAP street earnings issue relatively more accurate forecasts. We also argue that excluded earnings components often reflect negative transitory items, and that variation across analysts in the earnings metric forecasted suggests that the negative excluded items are forecasted by only a subset of analysts. Consistent with this assertion, we find that variation across analysts in the earnings metric forecasted is associated with a lower consensus GAAP earnings surprise and lower stock returns around the earnings announcement. Finally, although variation in the earnings metric forecasted is a source of analyst forecast dispersion, we find that it is also incrementally associated with a lower earnings response coefficient, consistent with the existence of transitory items. We therefore find that the variation in the earnings metric forecasted is an important source of analyst forecast dispersion that predicts not only a lower earnings surprise but also a lower earnings response.

Keywords: analysts; forecasts; street vs. GAAP; exclusions (search for similar items in EconPapers)
Date: 2023
References: View references in EconPapers View complete reference list from CitEc
Citations: View citations in EconPapers (1)

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http://dx.doi.org/10.1287/mnsc.2022.4553 (application/pdf)

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