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Collin Stultz

3 accepted papers

2026

MoRGEN: Mixture-of-Resolutions Generative Forecasting for Irregularly Sampled Medical Time-Series Data

ICML 2026poster

Autoregressive generative models for irregularly sampled clinical time-series data are increasingly used for zero-shot risk forecasting. Prior work typically adopts a single fine-grained discretization of time, where tokens are generated at one fixed, pre-determined, temporal resolution. We demonstr…

Cited by 0SourceScholar
2026

Position: Evaluation of ECG Representations Must Be Fixed

ICML 2026poster

This position paper argues that current benchmarking practice in 12-lead ECG representation learning must be fixed to ensure progress is reliable and aligned with clinically meaningful objectives. The field has largely converged on three public multi-label benchmarks (PTB-XL, CPSC2018, CSN) dominate…

Cited by 0SourceScholar
2023

Sequential Multi-Dimensional Self-Supervised Learning for Clinical Time Series

ICML 2023poster

Self-supervised learning (SSL) for clinical time series data has received significant attention in recent literature, since these data are highly rich and provide important information about a patient's physiological state. However, most existing SSL methods for clinical time series are limited in t…

Cited by 15SourcePDFScholar