植入医疗设备作为无线医疗监测的未来:使用新型数值建模的调查和性能评估

M. Akbar, Hongnian Yu, S. Cang
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引用次数: 3

摘要

由于医疗保健费用的增长、人口老龄化以及远程医疗中可穿戴式家庭医疗监测的成功部署,医疗植入物通信服务(MICS)频段下通过植入医疗设备对患者进行监测的情况显著增加。最近的文献缺乏从服务质量(QoS)方面对MICS频段的绩效评估机制和讨论;然而,每个植入式设备在延迟和吞吐量方面都有特定的QoS要求。在部署植入设备时,通信协议是否能够为该设备提供指定的QoS,这个问题引起了严重的关注。此外,MICS频段工作在连接和未连接两种模式下,哪个频段适合哪种类型的应用还需要更多的讨论。本文探讨了合适的多指标集绩效评价模型以及根据应用需求选择合适的多指标集评价模式等问题。首先,我们讨论了MICS频带不同层的问题,包括应用层、物理层和MAC层,以及部署方面的挑战。其次,我们建立了一个在连接和非连接模式下MICS频段性能评估的数值模型。该模型计算估计的通信延迟,并提供在上述频带模式下数据帧传输的最大吞吐量(MT)值。据我们所知,所提出的估计端到端总延迟和MT的数值模型是MICS频段的第一个数值模型。最后,我们提供了连接和未连接模式的比较分析,以帮助医疗保健专业人员为不同的植入装置选择合适的模式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Implanted medical devices as future of wireless healthcare monitoring: Investigation and performance evaluation using novel numerical modeling
The patient monitoring through implant medical devices under medical implant communication service (MICS) band has significantly increased due to growing healthcare expenses, an aging population, and successful deployment of wearable home-based medical monitoring in telemedicine. Recent literature lacks the performance evaluation mechanisms and discussion of MICS band in terms of quality of service (QoS); whereas, every implantable device has specified QoS requirements in terms of delay and throughput. This issue raises a serious concern while deploying implant devices that either the communications protocols are capable of providing specified QoS for this device or not. Moreover, MICS band works under two modes i.e., connected and unconnected, the decision which band is suitable for which type of application still needs more discussion. In this paper, we address the issues regarding appropriate performance evaluation model of MICS and selection of suitable mode of MICS according to application requirement. First, we discuss about the issues of different layers of MICS band including application, physical and MAC layer with respect to deployment challenges. Second, we develop a numerical model for the performance evaluation of the MICS band under connected and unconnected modes. This model computes the estimated communication delay and provides maximum throughput (MT) values for the transmission of the data frame under mentioned band modes. For the best of our knowledge, the proposed numerical model for the estimation of total end-to-end delay and MT is the first numerical model for MICS band. At the end, we provide the comparative analysis of the connected and unconnected modes which helps the healthcare professionals to choose an appropriate mode for different implant devices.
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