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Mariah L Schrum

5 accepted papers

2025

Context Steering: Controllable Personalization at Inference Time

ICLR 2025poster

To deliver high-quality, personalized responses, large language models (LLMs) must effectively incorporate context — personal, demographic, and cultural information specific to an end-user. For example, asking the model to explain Newton's second law with the context "I am a toddler'' should produce…

Cited by 0SourcePDFScholar
2024

Coprocessor Actor Critic: A Model-Based Reinforcement Learning Approach For Adaptive Brain Stimulation

ICML 2024poster

Adaptive brain stimulation can treat neurological conditions such as Parkinson’s disease and post-stroke motor deficits by influencing abnormal neural activity. Because of patient heterogeneity, each patient requires a unique stimulation policy to achieve optimal neural responses. Model-free reinfor…

2023

Mixed-Initiative Multiagent Apprenticeship Learning for Human Training of Robot Teams

NeurIPS 2023poster

Extending recent advances in Learning from Demonstration (LfD) frameworks to multi-robot settings poses critical challenges such as environment non-stationarity due to partial observability which is detrimental to the applicability of existing methods. Although prior work has shown that enabling com…

Cited by 10SourcePDFScholar
2022

Reciprocal MIND MELD: Improving Learning From Demonstration via Personalized, Reciprocal Teaching

CoRL 2022poster

Endowing robots with the ability to learn novel tasks via demonstrations will increase the accessibility of robots for non-expert, non-roboticists. However, research has shown that humans can be poor teachers, making it difficult for robots to effectively learn from humans. If the robot could instru…

Cited by 17SourceScholar