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Jiwei Zhao

4 accepted papers

2025

Towards the Efficient Inference by Incorporating Automated Computational Phenotypes under Covariate Shift

ICML 2025poster

Collecting gold-standard phenotype data via manual extraction is typically labor-intensive and slow, whereas automated computational phenotypes (ACPs) offer a systematic and much faster alternative. However, simply replacing the gold-standard with ACPs, without acknowledging their differences, could…

2024

ReTaSA: A Nonparametric Functional Estimation Approach for Addressing Continuous Target Shift

ICLR 2024poster

The presence of distribution shifts poses a significant challenge for deploying modern machine learning models in real-world applications. This work focuses on the target shift problem in a regression setting (Zhang et al., 2013; Nguyen et al., 2016). More specifically, the target variable $y$ (als…

Cited by 1SourcePDFScholar
2023

ELSA: Efficient Label Shift Adaptation through the Lens of Semiparametric Models

ICML 2023poster

We study the domain adaptation problem with label shift in this work. Under the label shift context, the marginal distribution of the label varies across the training and testing datasets, while the conditional distribution of features given the label is the same. Traditional label shift adaptation…

Cited by 9SourcePDFScholar
2023

Sufficient identification conditions and semiparametric estimation under missing not at random mechanisms

UAI 2023poster

Conducting valid statistical analyses is challenging in the presence of missing-not-at-random (MNAR) data, where the missingness mechanism is dependent on the missing values themselves even conditioned on the observed data. Here, we consider a MNAR model that generalizes several prior popular MNAR m…