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Yingfei Wang

7 accepted papers

2026

Language Model Augmented Semi-Supervised Statistical Inference

ICML 2026poster

Semi‑supervised statistical inference plays a key role in biomedical research, where labeled data often have higher quality but are limited due to costly clinical annotation. Yet, existing semi‑supervised statistical inference methods rely heavily on structured variables and strictly matched covaria…

Cited by 0SourceScholar
2024

DDI-CoCo: A Dataset for Understanding the Effect of Color Contrast in Machine-Assisted Skin Disease Detection

ICASSP 2024accepted

Skin tone as a demographic bias and inconsistent human labeling poses challenges in dermatology AI. We take another angle to investigate color contrast’s impact, beyond skin tones, on malignancy detection in skin disease datasets: We hypothesize that in addition to skin tones, the color difference b…

Cited by 0SourceScholar
2024

Electronic Medical Records Assisted Digital Clinical Trial Design

AISTATS 2024poster

Randomized controlled trials (RCTs) are gold standards for assessing intervention efficacy. Yet, generalizing evidence from classical RCTs can be challenging and sometimes problematic due to their limited external validity under stringent eligibility criteria and inadequate statistical power resulti…

Cited by 1SourcePDFScholar
2023

No-Regret Learning in Two-Echelon Supply Chain with Unknown Demand Distribution

AISTATS 2023poster

Supply chain management (SCM) has been recognized as an important discipline with applications to many industries, where the two-echelon stochastic inventory model, involving one downstream retailer and one upstream supplier, plays a fundamental role for developing firms’ SCM strategies. In this wor…

Cited by 5SourcePDFScholar
2016

The Knowledge Gradient for Sequential Decision Making with Stochastic Binary Feedbacks

ICML 2016poster

We consider the problem of sequentially making decisions that are rewarded by “successes” and “failures” which can be predicted through an unknown relationship that depends on a partially controllable vector of attributes for each instance. The learner takes an active role in selecting samples from…

Cited by 29SourcePDFScholar