Ubiquitous multi-occupant detection in smart environments

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Abstract

Recent advancements in ubiquitous computing have emphasized the need for privacy-preserving occupancy detection in smart environments to enhance security. This work presents a novel occupancy detection solution utilizing privacy-aware sensing technologies. The solution analyzes time-series data to detect not only occupancy as a binary problem, but also determines whether one or multiple individuals are present in an indoor environment. On three real-world datasets, our models outperformed various state-of-the-art algorithms, achieving F1-scores up to 94.91% in single-occupancy detection and a macro F1-score of 91.55% in multi-occupancy detection. This makes our approach a promising solution for improving security in smart environments.

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APA

Fährmann, D., Boutros, F., Kubon, P., Kirchbuchner, F., Kuijper, A., & Damer, N. (2024). Ubiquitous multi-occupant detection in smart environments. Neural Computing and Applications, 36(6), 2941–2960. https://doi.org/10.1007/s00521-023-09162-z

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