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Poster Abstract: A Weakly Supervised Tracking of Hand Hygiene Technique

机译:海报摘要:对手卫生技术的监督不足

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摘要

Each year, hundreds of thousands of people contract Healthcare Associated Infections (HAI). Poor hand hygiene compliance among healthcare workers is thought to be the leading cause of HAIs and methods were developed to measure compliance. Surprisingly, human observation is still considered the gold standard for measuring compliance by World Health Organization (WHO). Moreover, no automated solutions exist for monitoring hand hygiene techniques, such as "how to hand rub" technique by WHO. In this work, we introduce RFWash; the first radio-based device-free system for monitoring Hand Hygiene (HH) technique. On the technical level, HH gestures are performed back-to-back in a continuous sequence and pose a significant challenge to conventional two-stage gesture detection and recognition approaches. We propose a deep model that can be trained on unsegmented naturally-performed HH gesture sequences. RFWash evaluation demonstrates promising results for tracking HH gestures, achieving gesture error rate of < 8% when trained on 10-second segments, which reduces manual labelling overhead by 67% compared to fully supervised approach. The work is a step towards practical RF sensing that can reliably operate inside future healthcare facilities.
机译:每年,成千上万人感染医疗保健相关感染(HAI)。人们认为医护人员的手部卫生合规性差是HAI的主要原因,因此开发了测量合规性的方法。令人惊讶的是,人类观察仍然被认为是世界卫生组织(WHO)衡量依从性的黄金标准。此外,不存在用于监视手卫生技术的自动化解决方案,例如WHO的“如何擦手”技术。在这项工作中,我们介绍了RFWash;首个用于监控手卫生(HH)技术的基于无线电的无设备系统。在技​​术水平上,HH手势以连续顺序背对背执行,这对常规的两阶段手势检测和识别方法提出了重大挑战。我们提出了一种可以在未分段的自然执行的HH手势序列上进行训练的深度模型。 RFWash评估展示了用于跟踪HH手势的有希望的结果,在10秒钟的片段上进行训练时,手势错误率<8%,从而减少了手动标注的开销 与完全监督的方法相比,这一比例为67%。这项工作是朝着可以在未来的医疗机构内可靠运行的实际RF感测迈出的一步。

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