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Highly reliable energy-saving mac for wireless body sensor networks in healthcare systems

机译:用于医疗保健系统中无线人体传感器网络的高度可靠的节能Mac

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摘要

Wireless body sensor networks (BSNs) in healthcare systems operate under conflicting requirements. These are the maintenance of the desired reliability and message latency of data transmissions, while simultaneously maximizing battery lifetime of individual body sensors. In doing so, the characteristics of the entire system, including physical, medium access control (MAC), and application layers have to be considered. The aim of this paper is to develop a new MAC model for BSNs to fulfill all these specific rigorous requirements under realistic medical settings. For that purpose, a novel cross-layer fuzzy-rule scheduling algorithm and energy-aware radio activation policies are introduced. The main idea is to integrate a fuzzy-logic system in each body sensor to deal with multiple cross-layer input variables of diverse nature in an independent manner. By being autonomously aware of their current condition, body sensors are able to demand a "collision-free" time slot, whenever they consider it strictly required (e.g. high system packet delay or low body sensor residual battery lifetime). Similarly, they may refuse to transmit, if there is a bad channel link, thus permitting another body sensor to do so. This results in improving the system overall performance. The proposed MAC model is evaluated by computer simulations in terms of quality of service and energy consumption under specific healthcare scenarios.
机译:医疗保健系统中的无线人体传感器网络(BSN)在冲突的要求下运行。这些是在保持所需的数据传输可靠性和消息等待时间的同时,同时最大化了各个人体传感器的电池寿命。这样做时,必须考虑整个系统的特性,包括物理,媒体访问控制(MAC)和应用程序层。本文的目的是为BSN开发一种新的MAC模型,以在实际医疗环境下满足所有这些特定的严格要求。为此,介绍了一种新颖的跨层模糊规则调度算法和能量感知无线电激活策略。主要思想是将模糊逻辑系统集成到每个人体传感器中,以独立方式处理性质多样的多个跨层输入变量。通过自动了解其当前状况,人体传感器能够在他们认为严格要求的时间(例如,高系统数据包延迟或低人体传感器剩余电池寿命)时要求“无碰撞”时隙。同样,如果存在不良的信道链接,它们可能会拒绝传输,因此允许另一个人体传感器进行传输。这样可以提高系统的整体性能。在特定医疗保健场景下,通过计算机仿真评估了建议的MAC模型的服务质量和能耗。

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