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Real-time implementation and evaluation of an adaptive energy-aware data compression for wireless EEG monitoring systems

机译:无线EEG监测系统的自适应能量感知数据压缩的实时实现和评估

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Wireless sensor technologies can provide the leverage needed to enhance patient-caregivers collaboration through ubiquitous access and direct communication, which promotes smart and scalable vital sign monitoring of the chronically ill and elderly people live an independent life. However, the design and operation of BASNs are challenging, because of the limited power and small form factor of biomedical sensors. In this paper, an adaptive compression technique that aims at achieving low-complexity energy-efficient compression subject to time delay and distortion constraints is proposed. In particular, we analyze the processing energy consumption, then an energy consumption optimization model with constraints of distortion and time delay is proposed. Using this model, the Personal Data Aggregator (PDA) dynamically chooses the optimal compression parameters according to real-time measurements of the packet delivery ratio (PDR) or individual users. To evaluate and verify our optimization model, we develop an experimental testbed, where the EEG data is sent to the PDA that compresses the gathered data and forwards it to the server which decompresses and reconstructs the original signal. Experimental testbed and simulation results show that our adaptive compression technique can offer significant savings in the delivery time with low complexity and without affecting application accuracies.
机译:无线传感器技术可通过无处不在的访问和直接通信提供增强患者与护理人员合作所需的杠杆作用,从而促进对慢性病和老年人独立生活的智能且可扩展的生命体征监测。但是,由于生物医学传感器的功率有限且外形小巧,BASN的设计和操作具有挑战性。本文提出了一种自适应压缩技术,旨在实现受时间延迟和失真约束的低复杂度节能压缩。特别地,我们分析了加工能耗,然后提出了一个具有失真和时延约束的能耗优化模型。使用此模型,个人数据聚合器(PDA)根据对数据包传输率(PDR)或各个用户的实时测量动态选择最佳压缩参数。为了评估和验证我们的优化模型,我们开发了一个实验性试验台,在该试验台上,EEG数据被发送到PDA,后者压缩收集的数据并将其转发到服务器,该服务器再对原始信号进行解压缩和重建。实验测试平台和仿真结果表明,我们的自适应压缩技术可在不降低应用准确性的情况下,以较低的复杂度显着节省交付时间。

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