用热成像感知身体平衡变化,实现高精度隐私保护跌倒检测。
TaFall: Balance-Informed Fall Detection via Passive Thermal Sensing

- 通过热成像分析姿态与平衡动态,识别跌倒前的失衡过程。
- 在35人3000+跌倒样本上达98.26%检测率,误报率仅0.65%。
- 适合居家老人监护,尤其对隐私敏感、潮湿环境仍稳定有效。
跌倒是老年人受伤和死亡的主要原因,但多数事件发生在私人室内环境,监测需兼顾效果与隐私。现有基于射频传感的隐私保护方法多依赖粗粒度运动线索,实际部署中可靠性不足。本文提出TaFall,一种基于低成本、隐私保护热阵列传感的平衡感知跌倒检测系统。核心思想是将跌倒视为平衡能力退化过程,通过估计姿态驱动的生物力学平衡动态实现检测。为从低分辨率热图中实现该能力,提出:(i)外观-运动融合模型以稳健重建姿态;(ii)基于物理的平衡感知学习;(iii)姿态桥接预训练以增强鲁棒性。在包含35名参与者超过3000个跌倒实例的数据集上,检测率达98.26%,误报率0.65%。在四个家庭连续27天部署中,误报率低至0.00126%。浴室试点研究证实其在湿气与热干扰下仍具鲁棒性。结果表明,TaFall是日常居住环境中可靠且隐私保护的跌倒检测方案。
原文摘要 · Abstract (English)
Falls are a major cause of injury and mortality among older adults, yet most incidents occur in private indoor environments where monitoring must balance effectiveness with privacy. Existing privacy-preserving fall detection approaches, particularly those based on radio frequency sensing, often rely on coarse motion cues, which limits reliability in real-world deployments. We introduce TaFall, a balance-informed fall detection system based on low-cost, privacy-preserving thermal array sensing. The key insight is that TaFall models a fall as a process of balance degradation and detects falls by estimating pose-driven biomechanical balance dynamics. To enable this capability from low-resolution thermal array maps, we propose (i) an appearance-motion fusion model for robust pose reconstruction, (ii) physically grounded balance-aware learning, and (iii) pose-bridged pretraining to improve robustness. TaFall achieves a detection rate of 98.26% with a false alarm rate of 0.65% on our dataset with over 3,000 fall instances from 35 participants across diverse indoor environments. In 27 day deployments across four homes, TaFall attains an ultra-low false alarm rate of 0.00126% and a pilot bathroom study confirms robustness under moisture and thermal interference. Together, these results establish TaFall as a reliable and privacy-preserving approach to fall detection in everyday living environments.
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