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非接触式生命体征监测:多模态多任务方法综述

Contactless Vital Sign Monitoring: A Review Towards Multi-Modal Multi-Task Approaches.

作者信息

Hassanpour Ahmad, Yang Bian

机构信息

Department of Information Security and Communication Technology, Norwegian University of Science and Technology (NTNU), 2815 Gjovik, Norway.

出版信息

Sensors (Basel). 2025 Aug 4;25(15):4792. doi: 10.3390/s25154792.

Abstract

Contactless vital sign monitoring has emerged as a transformative healthcare technology, enabling the assessment of vital signs without physical contact with the human body. This review comprehensively reviews the rapidly evolving landscape of this field, with particular emphasis on multi-modal sensing approaches and multi-task learning paradigms. We systematically categorize and analyze existing technologies based on sensing modalities (vision-based, radar-based, thermal imaging, and ambient sensing), integration strategies, and application domains. The paper examines how artificial intelligence has revolutionized this domain, transitioning from early single-modality, single-parameter approaches to sophisticated systems that combine complementary sensing technologies and simultaneously extract multiple vital sign parameters. We discuss the theoretical foundations and practical implementations of multi-modal fusion, analyzing signal-level, feature-level, decision-level, and deep learning approaches to sensor integration. Similarly, we explore multi-task learning frameworks that leverage the inherent relationships between vital sign parameters to enhance measurement accuracy and efficiency. The review also critically addresses persisting technical challenges, clinical limitations, and ethical considerations, including environmental robustness, cross-subject variability, sensor fusion complexities, and privacy concerns. Finally, we outline promising future directions, from emerging sensing technologies and advanced fusion architectures to novel application domains and privacy-preserving methodologies. This review provides a holistic perspective on contactless vital sign monitoring, serving as a reference for researchers and practitioners in this rapidly advancing field.

摘要

非接触式生命体征监测已成为一种变革性的医疗技术,能够在不与人体进行身体接触的情况下评估生命体征。本综述全面回顾了该领域迅速发展的情况,特别强调了多模态传感方法和多任务学习范式。我们基于传感方式(基于视觉、基于雷达、热成像和环境传感)、集成策略和应用领域对现有技术进行了系统的分类和分析。本文探讨了人工智能如何彻底改变了这一领域,从早期的单模态、单参数方法转变为结合互补传感技术并同时提取多个生命体征参数的复杂系统。我们讨论了多模态融合的理论基础和实际实现,分析了传感器集成的信号级、特征级、决策级和深度学习方法。同样,我们探索了利用生命体征参数之间的内在关系来提高测量准确性和效率的多任务学习框架。该综述还批判性地探讨了持续存在的技术挑战、临床局限性和伦理考量,包括环境鲁棒性、个体差异、传感器融合复杂性和隐私问题。最后,我们概述了有前景的未来方向,从新兴的传感技术和先进的融合架构到新颖的应用领域和隐私保护方法。本综述提供了关于非接触式生命体征监测的全面视角,为这个快速发展领域的研究人员和从业者提供参考。

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