Publication | Open Access
A Simple Feasible Procedure to fit Models with High-dimensional Fixed Effects
407
Citations
9
References
2010
Year
Minimum Memory RequirementsEngineeringModeling MethodSimultaneous Equation ModelingLatent ModelingData ScienceEstimation TheoryStatisticsIterative ApproachEstimation StatisticLatent Variable ModelHigh-dimensional Fixed EffectsFunctional Data AnalysisHigh-dimensional MethodRobust ModelingSimple Feasible ProcedureEconometricsStatistical InferenceModel AnalysisSemi-nonparametric Estimation
In this article, we describe an iterative approach for the estimation of linear regression models with high-dimensional fixed effects. This approach is computationally intensive but imposes minimum memory requirements. We also show that the approach can be extended to nonlinear models and to more than two high-dimensional fixed effects.
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