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Elynn Chen

6 accepted papers

2026

Seeing Through the Brain: New Insights from Decoding Visual Stimuli with fMRI

ICLR 2026oral

Understanding how the brain encodes visual information is a central challenge in neuroscience and machine learning. A promising approach is to reconstruct visual stimuli—essentially images—from functional Magnetic Resonance Imaging (fMRI) signals. This involves two stages: transforming fMRI signals…

Cited by 0SourceScholar
2025

Conditional Prediction ROC Bands for Graph Classification

AISTATS 2025poster

Graph classification in medical imaging and drug discovery requires accuracy and robust uncertainty quantification. To address this need, we introduce Conditional Prediction ROC (CP-ROC) bands, offering uncertainty quantification for ROC curves and robustness to distributional shifts in test data. A…

Cited by 0SourcecodeScholar
2025

Transfer Faster, Price Smarter: Minimax Dynamic Pricing under Cross-Market Preference Shift

NeurIPS 2025spotlight

We study contextual dynamic pricing when a target market can leverage $K$ auxiliary markets—offline logs or concurrent streams—whose *mean utilities differ by a structured preference shift*. We propose *Cross-Market Transfer Dynamic Pricing (CM-TDP)*, the first algorithm that *provably* handles such…

Cited by 0SourceScholar
2021

On Projection Robust Optimal Transport: Sample Complexity and Model Misspecification

AISTATS 2021poster

Optimal transport (OT) distances are increasingly used as loss functions for statistical inference, notably in the learning of generative models or supervised learning. Yet, the behavior of minimum Wasserstein estimators is poorly understood, notably in high-dimensional regimes or under model misspe…