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Xi Chen

Jeudi 2 Avril 2026

Multi-Resident Data Association in Smart Homes: Modeling and Learning

Abstract:  
Tracking activities in multi-resident smart homes using non-intrusive ambient sensors poses a major challenge: associating anonymous data to specific residents. To overcome the representational limitations of traditional filtering methods, this thesis reformulates this task as a sequential decision-making problem based on Markov Decision Processes. Within this framework, we first propose supervised approaches. These include NEP+Search, which uses next-event prediction to evaluate the consistency between an event and a resident's history, thereby constructing a reward signal to guide the search, as well as Behavior Cloning, which directly predicts assignment actions end-to-end. These methods significantly outperform classical models during complex concurrent activities. Next, to improve generalization, we explore generative approaches with LADA for text-conditioned zero-shot reasoning, and LLM+BC for the fine-tuning of lightweight language models via LoRA, achieving state-of-the-art performance even on highly noisy data. Empirically evaluated on the CASAS, MARBLE, and MuRAL datasets, this research offers a comprehensive progression from mathematical modeling to advanced generative AI solutions, ensuring accurate, scalable, and privacy-preserving tracking.

Keywords:
Multi-resident data association, Smart home, Markov Decision Process, Large language models, Ambient intelligence, Deep learning, Human Activity Recognition.

Date et lieu

Jeudi 2 Avril à 9:00
Amphithéâtre de la MACI

Composition du Jury

Christophe Lohr 
Associate Professor, IMT Atlantique — Reviewer
Dan Istrate
Researcher, Université de Technologie de Compiègne — Reviewer
Olivier Romain
Full Professor, Cergy Paris University — Examiner
Sylvain Giroux 
Full Professor, Université de Sherbrooke — Examiner
Sophie Dupuy-Chessat 
Full Professor, Université Grenoble Alpes — Examiner
Julien Cumin 
Research Engineer, PhD, Orange Innovation — Advisor
Fano Ramparany 
Research Engineer, PhD, Orange Innovation — Advisor
Dominique Vaufreydaz 
Full Professor, Université Grenoble Alpes — Thesis Supervisor

Publié le 31 mars 2026

Mis à jour le 31 mars 2026