A deep learning based system for handwashing procedure evaluation.

Q3 Medicine
Antonio Greco, Gennaro Percannella, Pierluigi Ritrovato, Alessia Saggese, Mario Vento
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引用次数: 0

Abstract

Hand washing preparation can be considered as one of the main strategies for reducing the risk of surgical site contamination and thus the infections risks. Within this context, in this paper we propose an embedded system able to automatically analyze, in real-time, the sequence of images acquired by a depth camera to evaluate the quality of the handwashing procedure. In particular, the designed system runs on an NVIDIA Jetson Nano TM computing platform. We adopt a convolutional neural network, followed by a majority voting scheme, to classify the movement of the worker according to one of the ten gestures defined by the World Health Organization. To test the proposed system, we collect a dataset built by 74 different video sequences. The results achieved on this dataset confirm the effectiveness of the proposed approach.

基于深度学习的洗手程序评估系统。
洗手准备工作是降低手术部位污染风险和感染风险的主要策略之一。在此背景下,我们在本文中提出了一种嵌入式系统,该系统能够实时自动分析深度摄像头获取的图像序列,以评估洗手程序的质量。具体而言,所设计的系统在英伟达 Jetson Nano TM 计算平台上运行。我们采用了一个卷积神经网络,然后是一个多数表决方案,根据世界卫生组织定义的十种手势之一对工人的动作进行分类。为了测试所提出的系统,我们收集了由 74 个不同视频序列组成的数据集。在该数据集上取得的结果证实了所提方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Annual review of nursing research
Annual review of nursing research Medicine-Medicine (all)
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期刊介绍: This landmark annual review has provided nearly three decades of knowledge, insight, and research on topics critical to nurses everywhere. The purpose of this annual review is to critically examine the full gamut of literature on key topics in nursing practice, including nursing theory, care delivery, nursing education, and the professional aspects of nursing. Past volumes of ARNR have addressed critical issues such as: •Pediatric care •Complementary and alternative health •Chronic illness •Geriatrics •Alcohol abuse •Patient safety •Rural nursing •Tobacco use
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