用于远程监测患者健康的实时可视化分析

Maryam Boumrah, S. Garbaya, A. Radgui
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引用次数: 0

摘要

最近,用于患者生成健康数据(PGHD)的先进数据收集技术的普及,使得远程健康监测更容易获得。然而,大量医疗生成数据的复杂性对传统的患者监测方法提出了重大挑战,阻碍了有效提取有用信息。在这种情况下,必须开发一个健壮且经济高效的框架,以提供可伸缩性并实时处理PGHD的异构性。这样的系统可以作为一个参考,并将指导未来的研究,以监测在家庭条件下接受治疗的患者。本研究提出了一个实时可视化分析框架,为多模态大数据提供了深刻的可视化表示。拟议系统的设计遵循以用户为中心的设计(UCD)原则,以确保它满足医疗从业者的需求和期望。通过将该框架应用于神经运动康复训练中患者上肢运动的运动学数据可视化,评估了该框架的可用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Real-Time Visual Analytics for Remote Monitoring of Patient’s Health
The recent proliferation of advanced data collection technologies for Patient Generated Health Data (PGHD) has made remote health monitoring more accessible. However, the complex nature of the big volume of medical generated data presents a significant challenge for traditional patient monitoring approaches, impeding the effective extraction of useful information. In this context, it is imperative to develop a robust and cost-effective framework that provides the scalability and deals with the heterogeneity of PGHD in real-time. Such a system could serve as a reference and would guide future research for monitoring patient undergoing a treatment at home conditions. This study presents a real-time visual analytics framework offering insightful visual representations of the multimodal big data. The proposed system was designed following the principles of User Centered Design (UCD) to ensure that it meets the needs and expectations of medical practitioners. The usability of this framework was evaluated by its application to the visualization of kinematic data of the upper limbs’ movement of patients during neuromotor rehabilitation exercises.
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