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Power transmission and workload balancing policies in eHealth mobile cloud computing scenarios

机译:eHealth移动云计算场景中的电力传输和工作负载平衡策略

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The Internet of Things (IoT) holds big promises for healthcare, especially in proactive personal eHealth. Prediction of symptomatic crises in chronic diseases in the IoT scenario leads to the deployment of ambulatory monitoring systems. These systems place a major concern in the amount of data to be processed and the intelligent management of the energy consumption. The huge amount of data generated for these systems require high computing capabilities only available in Data Centers. This paper presents a real case of prediction in the eHealth scenario, devoted to neurological disorders. The presented case study focuses on the migraine headache, a disease that affects around 15% of the European population. This paper extrapolates results from real data and simulations in a study where migraine patients are monitored using an unobtrusive Wireless Body Sensor Network. Low-power techniques are applied in monitorization nodes. Techniques such us: on-node signal processing and radio policies to make node's autonomy longer and save energy, have been applied. Workload balancing policies are carried out in the coordinator nodes and Data Centers to reduce the computational burden in these facilities and minimize its energy consumption. Our results draw average savings of € 288 million in this eHealth scenario applied only to 2% of European migraine sufferers; in addition to savings of € 1272 million due to the benefits of the migraine prediction.
机译:物联网(IoT)在医疗保健方面具有广阔的前景,尤其是在主动式个人eHealth中。在物联网场景中,对慢性病的症状危机的预测导致了动态监控系统的部署。这些系统主要关注要处理的数据量以及能耗的智能管理。为这些系统生成的大量数据需要仅在数据中心中可用的高计算能力。本文介绍了在eHealth情景中专门针对神经系统疾病的预测的真实案例。本案例研究的重点是偏头痛,这种疾病影响了大约15%的欧洲人口。本文从真实数据和模拟中得出的结果推断出了一项研究,其中使用不引人注目的无线人体传感器网络监控偏头痛患者。低功耗技术应用于监视节点。我们采用了诸如节点上信号处理和无线电策略之类的技术,以延长节点的自主权并节省能源。工作负载平衡策略在协调器节点和数据中心中执行,以减轻这些设施中的计算负担并最大程度地降低其能耗。我们的结果显示,在此eHealth情景中,平均节省了2.88亿欧元,仅适用于2%的欧洲偏头痛患者;此外,由于偏头痛预测的收益,节省了12.72亿欧元。

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