Vision Language Models for Dynamic Human Activity Recognition in Healthcare Settings

October 24, 2025 ยท Declared Dead ยท ๐Ÿ› International Work-Conference on Bioinformatics and Biomedical Engineering

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Authors Abderrazek Abid, Thanh-Cong Ho, Fakhri Karray arXiv ID 2510.21424 Category cs.CL: Computation & Language Cross-listed cs.AI, cs.CV, cs.LG Citations 1 Venue International Work-Conference on Bioinformatics and Biomedical Engineering Last Checked 5 months ago
Abstract
As generative AI continues to evolve, Vision Language Models (VLMs) have emerged as promising tools in various healthcare applications. One area that remains relatively underexplored is their use in human activity recognition (HAR) for remote health monitoring. VLMs offer notable strengths, including greater flexibility and the ability to overcome some of the constraints of traditional deep learning models. However, a key challenge in applying VLMs to HAR lies in the difficulty of evaluating their dynamic and often non-deterministic outputs. To address this gap, we introduce a descriptive caption data set and propose comprehensive evaluation methods to evaluate VLMs in HAR. Through comparative experiments with state-of-the-art deep learning models, our findings demonstrate that VLMs achieve comparable performance and, in some cases, even surpass conventional approaches in terms of accuracy. This work contributes a strong benchmark and opens new possibilities for the integration of VLMs into intelligent healthcare systems.
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