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Josephine Lamp

3 accepted papers

2026

Safety Generalization Under Distribution Shift in Safe Reinforcement Learning: A Diabetes Testbed

ICML 2026poster

Safe Reinforcement Learning (RL) algorithms are typically evaluated under fixed training conditions. We investigate whether training-time safety guarantees transfer to deployment under distribution shift, using diabetes management as a safety-critical testbed. We benchmark safe RL algorithms on a un…

Cited by 0SourceScholar
2025

Quantitative Predictive Monitoring and Control for Safe Human-Machine Interaction

AAAI 2025technical

There is a growing trend toward AI systems interacting with humans to revolutionize a range of application domains such as healthcare and transportation. However, unsafe human-machine interaction can lead to catastrophic failures. We propose a novel approach that predicts future states by accounting…

Cited by 0SourcePDFScholar
2023

GlucoSynth: Generating Differentially-Private Synthetic Glucose Traces

NeurIPS 2023poster

We focus on the problem of generating high-quality, private synthetic glucose traces, a task generalizable to many other time series sources. Existing methods for time series data synthesis, such as those using Generative Adversarial Networks (GANs), are not able to capture the innate characteristic…

Cited by 4SourcePDFScholar