Causal Interpretation of Estimands Defined by Exposure Mappings

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Date

12 mars 2024

Type de document
Périmètre
Identifiant
  • 2403.08183
Collection

arXiv

Organisation

Cornell University



Sujets proches En

Therapy

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Michael P. Leung, « Causal Interpretation of Estimands Defined by Exposure Mappings », arXiv - économie


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In settings with interference, researchers commonly define estimands using exposure mappings to summarize neighborhood variation in treatment assignments. This paper studies the causal interpretation of these estimands under weak restrictions on interference. We demonstrate that the estimands can exhibit unpalatable sign reversals under conventional identification conditions. This motivates the formulation of sign preservation criteria for causal interpretability. To satisfy preferred criteria, it is necessary to impose restrictions on interference, either in potential outcomes or selection into treatment. We provide sufficient conditions and show that they can be satisfied by nonparametric models with interference in both the outcome and selection stages.

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