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Window-based energy-aware model for real-time detection and reporting of progressive development of cardiac atrial fibrillation in wearable computing

机译:基于窗口的能量感知模型,用于可穿戴计算中实时检测和报告心脏房颤的逐步发展

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Current portable healthcare monitoring systems are small, battery-operated electrocardiograph devices that are used to record the heart's rhythm and activity. However they are not energy-aware and fall short on delivering real-time early detection and reporting of progressive development of cardiac atrial fibrillation (A-Fib). Previous work by the same authors proposes adopting an incidence-based energy-aware model that incorporates a real-time detection algorithm for the onset of A-Fib using an A-Fib incidence rate in a wearable computing device during a 24 hour period. The results of the adopted incidence-based energy-aware model show an improvement of 38.2% when compared to the energy consumed by current telemetry energy model. This paper extends the previous design to the paroxysmal phase of A-Fib within a personalized A-Fib prevalence window lasting up to 7 days in order to monitor and detect the progressive development of A-Fib in wearable computing devices. The results from the new window-based energy-aware model show that the proposed energy model may potentially consume 89.7% less energy than the telemetry energy model. The design shows promising results in further meeting the energy needs for real-time detection and reporting of progressive development of cardiac A-Fib in wearable computing devices.
机译:当前的便携式医疗监控系统是小型的电池供电的心电图仪设备,用于记录心脏的节律和活动。但是,它们并不了解能量,因此无法提供实时的早期检测并报告心房颤动(A-Fib)的逐步发展。该作者先前的工作提出采用基于事件的能量感知模型,该模型结合了实时检测算法,用于在24小时内使用可穿戴计算设备中的A-Fib发生率来检测A-Fib的发作。与当前遥测能量模型所消耗的能量相比,所采用的基于事件的能量感知模型的结果显示出38.2%的改进。本文将之前的设计扩展到持续7天的个性化A-Fib患病率窗口内的A-Fib阵发性阶段,以监视和检测可穿戴计算设备中A-Fib的逐步发展。新的基于窗口的能量感知模型的结果表明,与遥测能量模型相比,所提出的能量模型所消耗的能量可能减少了89.7%。该设计在进一步满足可穿戴计算设备中实时检测和报告心脏A-Fib进展的能量需求方面显示出令人鼓舞的结果。

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