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Custom biomedical sensors for application in wireless body area networks and medical device integration frameworks.

机译:用于无线人体局域网和医疗设备集成框架的定制生物医学传感器。

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摘要

The U.S. health care system is one of the most advanced and costly systems in the world. The health services supply/demand gap is being enlarged by the aging population coupled with shortages in the traditional health care workforce and new information technology workers. This will not change if the current medical system adheres to the traditional hospital-centered model. One promising solution is to incorporate patient-centered, point-of-care test systems that promote proactive and preventive care by utilizing technology advancements in sensors, devices, communication standards, engineering systems, and information infrastructures.;Biomedical devices optimized for home and mobile health care environments will drive this transition. This dissertation documents research and development focused on biomedical device design for this purpose (including a wearable wireless pulse oximeter, motion sensor, and two-thumb electrocardiograph) and, more importantly, their interactions with other medical components, their supporting information infrastructures, and processing tools that illustrate the effectiveness of their data. The GumPack concept and prototype introduced in Chapter 2 addresses these aspects, as it is a sensor-laden device, a host for a local body area network (BAN), a portal to external integration frameworks, and a data processing platform. GumPack sensor-component design (Chapters 3 and 4) is oriented toward surface applications (e.g., touch and measure), an everyday-carry form factor, and reconfigurability. Onboard tagging technology (Chapters 5 and 6) enhances sensor functionality by providing, e.g., a signal quality index and confidence coefficient for itself and/or next-tier medical components (e.g., a hub).;Sensor interaction and integration work includes applications based on the GumPack design (Chapters 7 through 9) and the Medical Device Coordination Framework (Chapters 10 through 12). A high-resolution, wireless BAN is presented in Chapter 8, followed by a new physiological use case for pulse wave velocity estimation in Chapter 9. The collaborative MDCF work is transitioned to a web-based Hospital Information Integration System (Chapter 11) by employing database, AJAX, and Java Servlet technology. Given the preceding sensor designs and the availability of information infrastructures like the MDCF, medical platform-oriented devices (Chapter 12) could be an innovative and efficient way to design medical devices for hospital and home health care applications.
机译:美国医疗保健系统是世界上最先进,成本最高的系统之一。人口老龄化加上传统卫生保健人员和新信息技术人员的短缺,使卫生服务的供需差距正在扩大。如果当前的医疗系统遵循传统的以医院为中心的模式,那么这将不会改变。一种有前途的解决方案是整合以患者为中心的即时检验系统,通过利用传感器,设备,通信标准,工程系统和信息基础架构中的技术进步来促进主动和预防性护理。医疗环境将推动这一转变。本论文的研究和开发集中在为此目的的生物医学设备设计(包括可穿戴无线脉搏血氧仪,运动传感器和两拇指心电图仪)上,更重要的是,它们与其他医疗组件的相互作用,其支持的信息基础设施和处理说明其数据有效性的工具。第2章介绍的GumPack概念和原型解决了这些方面,因为它是一个装有传感器的设备,一个局域网(BAN)的主机,一个外部集成框架的门户以及一个数据处理平台。 GumPack传感器组件设计(第3章和第4章)面向表面应用(例如触摸和测量),日常携带的外形尺寸和可重构性。板载标签技术(第5章和第6章)通过为其自身和/或下一层医疗组件(例如集线器)提供信号质量指标和置信系数来增强传感器功能。传感器交互和集成工作包括基于应用程序的关于GumPack设计(第7至9章)和医疗设备协调框架(第10至12章)。第8章介绍了高分辨率无线BAN,第9章介绍了新的生理用例,用于脉搏波速度估计。通过采用以下方法,将MDCF的协作工作转变为基于Web的医院信息集成系统(第11章)数据库,AJAX和Java Servlet技术。鉴于先前的传感器设计以及诸如MDCF之类的信息基础设施的可用性,面向医疗平台的设备(第12章)可能是设计用于医院和家庭保健应用的医疗设备的创新而有效的方法。

著录项

  • 作者

    Li, Kejia.;

  • 作者单位

    Kansas State University.;

  • 授予单位 Kansas State University.;
  • 学科 Engineering Computer.;Engineering Electronics and Electrical.;Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 203 p.
  • 总页数 203
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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