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Development of a wireless health monitoring system with an efficient power management scheme based on localized time-varying data analyses.

机译:开发具有基于局部时变数据分析的高效电源管理方案的无线健康监控系统。

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摘要

This work involves development of an integrated health monitoring system based on wireless sensor motes for continuous wireless monitoring of vital signs for large populations. The system incorporates efficient power management schemes based on localized data analysis, and will be useful in a variety of settings such as nursing homes, emergency rooms, military fields, and individual health monitoring. Remote monitoring of patients via wireless sensor systems has the potential to change the way health care is delivered. However, until now very few cost-effective wireless remote monitoring systems have been developed and put into use. One of the key challenges in making wireless monitoring ubiquitous in health care is efficiently managing the limited energy in individual sensor nodes. To this end, the current work utilizes smart sampling and sufficient processing at the sensor so that minimal data is transmitted. Our technique is based on the development of appropriate hardware and software implementations. It has the added benefit of significantly reducing the amount of data that needs to be analyzed at the central server, which further facilitates faster real-time alerts. Finally, our localized data analysis scheme also results in minimal usage of available radio transmission bandwidth, which allows for robust wireless transmission of many other vital signs' data from multiple patients in close vicinity. In this context of wireless health monitoring, this work has the following four specific aims. The first specific aim involves design and development of integrated scalable wireless motes containing an electrocardiograph, pulse oximeter sensor and other various sensors. The goal is to determine if these additional physiological parameters lead to better on-demand sampling rate strategies, better fault tolerance, and more accurate medical decision alerts. The second specific aim is to design and develop an on-demand variable sampling data transmission scheme. The sampling rate strategy will be based on localized real-time data analysis using a microprocessor attached to a mote combined with the subject's a priori medical data and the published risk factors. The third specific aim is to design wireless networking protocols for transmitting data from a large number of monitored subjects in the same physical space. The fourth specific aim involves development of new algorithms to facilitate more accurate medical decision alerts.
机译:这项工作涉及开发基于无线传感器微粒的集成式健康监测系统,用于对大量人群的生命体征进行连续无线监测。该系统结合了基于局部数据分析的高效电源管理方案,将在多种环境中有用,例如疗养院,急诊室,军事领域和个人健康监测。通过无线传感器系统对患者进行远程监视可能会改变医疗保健的提供方式。但是,到目前为止,很少有具有成本效益的无线远程监控系统得到开发和使用。在医疗保健中普及无线监控的主要挑战之一是有效管理各个传感器节点中有限的能量。为此,当前的工作是利用智能采样和传感器处的充分处理,以便传输最少的数据。我们的技术基于适当的硬件和软件实现的开发。它具有额外的好处,即可以大大减少需要在中央服务器上分析的数据量,从而进一步促进了更快的实时警报。最后,我们的本地化数据分析方案还可以最大程度地减少可用无线电传输带宽的使用,从而可以可靠地无线传输附近许多患者的许多其他生命体征数据。在无线健康监控的背景下,这项工作具有以下四个具体目标。第一个特定目标涉及设计和开发集成的可扩展无线节点,其中包含心电图仪,脉搏血氧饱和度传感器和其他各种传感器。目的是确定这些额外的生理参数是否导致更好的按需采样率策略,更好的容错能力以及更准确的医疗决策警报。第二个特定目的是设计和开发按需可变采样数据传输方案。采样率策略将基于使用连接到微尘的微处理器的局部实时数据分析,结合受试者的先验医疗数据和已发布的风险因素。第三个特定目标是设计用于在同一物理空间中从大量受监视主体传输数据的无线联网协议。第四个特定目标涉及开发新算法,以促进更准确的医疗决策警报。

著录项

  • 作者

    Zhao, He.;

  • 作者单位

    State University of New York at Stony Brook.;

  • 授予单位 State University of New York at Stony Brook.;
  • 学科 Engineering Biomedical.;Computer Science.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;自动化技术、计算机技术;
  • 关键词

  • 入库时间 2022-08-17 11:39:00

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