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Statistical Learning of Heterogenous Tretment Effect with an Emphasis on Valid Inference

Implementing Organization

Principal Investigator
Prof. Pallavi Basu
Indian School Of Business, Hyderabad, Telangana

Project Overview

Estimation and inference of heterogeneous treatment effects (HTEs) have become a developing central interest in causal inference. The need arises from fields such as medicine, online marketing, policy studies, and government and welfare programs where the effect of a treatment is no longer viewed to be uniform across participants. In our work, we try to quantify and conduct statistical inferences of the HTEs mathematically. Specifically, we aim to perform valid inferences, where `validity’ stems from the fact that the covariate of interest may be chosen AFTER viewing the data. In that spirit, we aim to use sample splitting efficiently. Our methods will apply to observational data – finding a far-wide usage in fields such as epidemiology and precision medicine. Keywords: Causal Inference, Epidemiology, Precision Medicine, Heterogeneous Treatment Effect, Sample Splitting, Valid Statistical Inference

Source

Source
Anusandhan National Research Foundation/Science and Engineering Research Board (SERB), DST 2023-24
Funding Organization
Quick Information
Area of Research
Mathematical Sciences
Focus Area
Statistics and Data Science
Start Date
2023
End Date
2026
Status
Ongoing
Contact
pallavi_basu@isb.edu
Output
No. of Research Paper
00
Technologies (If Any)
00
No. of PhD Produced
00
Publications
00
No. of Patents
Filed : 00
Grant : 00
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