Arbeitspapier

Neglected heterogeneity and the algebra of least squares

This paper explores an algebraic relationship between two types of coefficients for a regression with several predictors and an additive binary group variable. In a general regression, the regression coefficients are allowed to be group-specific, the restricted regression imposes constant coefficients. The key result is that the restricted coefficients imposing homogeneity are not necessarily a convex average of the unrestricted coefficients obtained from the more general regression. In the context of treatment effect estimation with several treatment arms and grouplevel controls, this means that the estimated effect of a specific treatment can be non-zero, and statistically significant, even if the estimated unrestricted effects are zero in each group.

Language
Englisch

Bibliographic citation
Series: Working Paper ; No. 426

Classification
Wirtschaft
Single Equation Models; Single Variables: Cross-Sectional Models; Spatial Models; Treatment Effect Models; Quantile Regressions
Subject
Ordinary least squares
subsample heterogeneity
variance-weighting
average treatment effect

Event
Geistige Schöpfung
(who)
Winkelmann, Rainer
Event
Veröffentlichung
(who)
University of Zurich, Department of Economics
(where)
Zurich
(when)
2023

DOI
doi:10.5167/uzh-229123
Handle
Last update
10.03.2025, 11:45 AM CET

Data provider

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Object type

  • Arbeitspapier

Associated

  • Winkelmann, Rainer
  • University of Zurich, Department of Economics

Time of origin

  • 2023

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