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Energy Saving Using Scenario Based Sensor Selection on Medical Shoes

机译:在医用鞋上使用基于场景的传感器选择来节能

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Cost and energy have become the bottleneck of many medical embedded systems. It is mainly due to the fact that wireless medical devices used in wireless health applications normally employ a large number of sensors, which are both expensive as well as consuming a considerable amount of energy. In this paper, we have developed a cost and energy saving scheme by reducing the number of required sensors in the medical devices. We have used a popular medical shoe with 99 pressure sensors for demonstration. With the goal of reducing the number of required sensors without influencing the diagnose accuracy, we have proposed algorithms to select only a small subset of the sensors while still maintaining an almost same diagnostic performance compared to using all the 99 sensors. Our results indicate that on average, our sensor selection can save as much as 88% of the total sensors. We also analyze the effect of using the medical shoes under different scenarios on the results of sensor selection. For example, we have analyzed the scenarios of walking, jumping, running and slow walking. Based on our sensor selection algorithm, it turns out that there exists different subsets of sensors to best recover the diagnostic performances for different scenarios.
机译:成本和能源已成为许多医疗嵌入式系统的瓶颈。主要是由于以下事实:用于无线健康应用的无线医疗设备通常会使用大量传感器,这些传感器既昂贵又消耗大量能量。在本文中,我们通过减少医疗设备中所需传感器的数量,开发了一种成本和节能方案。我们已使用带有99个压力传感器的流行医疗鞋进行演示。为了减少所需传感器的数量而又不影响诊断准确性,我们提出了仅选择一小部分传感器的算法,而与使用所有99个传感器相比,仍保持几乎相同的诊断性能。我们的结果表明,平均而言,我们选择的传感器可以节省多达88%的总传感器。我们还分析了在不同情况下使用医用鞋对传感器选择结果的影响。例如,我们分析了步行,跳跃,奔跑和慢速行走的场景。基于我们的传感器选择算法,事实证明存在不同的传感器子集,可以最好地恢复不同情况下的诊断性能。

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