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Joseph Futoma

5 accepted papers

2025

Beyond Sensor Data: Foundation Models of Behavioral Data from Wearables Improve Health Predictions

ICML 2025poster

Wearable devices record physiological and behavioral signals that can improve health predictions. While foundation models are increasingly used for such predictions, they have been primarily applied to low-level sensor data, despite behavioral data often being more informative due to their alignment…

Cited by 0SourcePDFScholar
2020

Interpretable Off-Policy Evaluation in Reinforcement Learning by Highlighting Influential Transitions

ICML 2020poster

Off-policy evaluation in reinforcement learning offers the chance of using observational data to improve future outcomes in domains such as healthcare and education, but safe deployment in high stakes settings requires ways of assessing its validity. Traditional measures such as confidence intervals…

2020

Model-based Reinforcement Learning for Semi-Markov Decision Processes with Neural ODEs

NeurIPS 2020poster

We present two elegant solutions for modeling continuous-time dynamics, in a novel model-based reinforcement learning (RL) framework for semi-Markov decision processes (SMDPs), using neural ordinary differential equations (ODEs). Our models accurately characterize continuous-time dynamics and enable…

2020

POPCORN: Partially Observed Prediction Constrained Reinforcement Learning

AISTATS 2020poster

Many medical decision-making tasks can be framed as partially observed Markov decision processes (POMDPs). However, prevailing two-stage approaches that first learn a POMDP and then solve it often fail because the model that best fits the data may not be well suited for planning. We introduce a new…

2017

Learning to Detect Sepsis with a Multitask Gaussian Process RNN Classifier

ICML 2017poster

We present a scalable end-to-end classifier that uses streaming physiological and medication data to accurately predict the onset of sepsis, a life-threatening complication from infections that has high mortality and morbidity. Our proposed framework models the multivariate trajectories of continuou…