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Hui Lan

5 accepted papers

2026

Learning Treatment Representations for Downstream Instrumental Variable Regression

ICML 2026poster

Traditional instrumental variable (IV) estimators cannot accommodate more treatments than instruments, a limitation that is critical for high-dimensional, unstructured data like clinical treatment pathways. Current practice—applying unsupervised dimension reduction before IV estimation—suffers from …

Cited by 0SourceScholar
2025

A Meta-learner for Heterogeneous Effects in Difference-in-Differences

ICML 2025poster

We address the problem of estimating heterogeneous treatment effects in panel data, adopting the popular Difference-in-Differences (DiD) framework under the conditional parallel trends assumption. We propose a novel doubly robust meta-learner for the Conditional Average Treatment Effect on the Treat…

Cited by 1SourcePDFScholar