A SEMIPARAMETRIC PANEL DATA MODEL WITH SPATIAL-VARYING TEMPORAL EFFECTS
Keywords:
spatial panel data, geographically weighted regression, profile least-squares estimation, temporal effects.DOI:
https://doi.org/10.17654/0972086324003Abstract
To relax the additive assumption on individual effect and temporal effect of traditional two-way panel data models, this paper proposes a novel semiparametric spatial panel data model, in which the temporal effects are individual heterogeneity and specified as nonparametric functions of spatial locations. Based on the fact that the proposed model is a mixed geographically weighted regression model, we apply the profile least-squares estimate approach to estimate the regression coefficients and temporal effect functions. Some simulations are conducted to examine the performance of our proposed method and the results are satisfactory.
Received: October 4, 2023
Accepted: November 6, 2023
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