Data and Code for: Event-Studies with a Continuous Treatment
收藏ICPSR2024-01-01 更新2026-04-16 收录
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https://www.openicpsr.org/openicpsr/project/201785/version/V1/view?path=/openicpsr/201785/fcr:versions/V1/codes/stata&type=folder
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资源简介:
This paper builds on the identification results and estimation tools for continuous DiD designs in Callaway, Goodman-Bacon, and Sant'Anna (2023) to discuss aggregation strategies for event studies with continuous treatments. Estimates from continuous designs are functions of the treatment dosage/intensity variable. Nonparametric plots of these functions show heterogeneity across doses, but not heterogeneity over time. Event-study-type plots of aggregated parameters achieve the opposite. We describe how partially aggregating across treatment doses and event time can lead to readable yet nuanced figures that reflect how causal effects evolve over time, potentially in different parts of the treatment dose distribution.
提供机构:
Opportunity and Inclusive Growth Institute, Federal Reserve Bank of Minneapolis; Emory University; University of Georgia
创建时间:
2024-01-01



