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A multi-sensor data fusion technique using data correlations among multiple applications

机译:利用多个应用程序之间的数据相关性的多传感器数据融合技术

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While wireless sensor networks (WSNs) have been traditionally tasked with single applications, in recent years we have witnessed the emergence of WSNs that allow the sensing and communication infrastructure to be shared among multiple applications thus optimizing the use of resources. As the number of applications in a WSN increases, a growing amount of sensor-generated data will be produced, from which useful information can be extracted. A major requirement in these networks is to save energy in order to extend their operational lifetime. However, wireless sensors and actuators commonly rely on batteries as their energy sources, whose replacement is undesirable or unfeasible. Among the methods employed to extend network lifetime, Multisensor data fusion (MDF) is one of the most widely used. Traditional MDFs are not able to identify different contexts, since they are designed using an application-specific design for the network. As the number of applications increases, the application data ranges overlap and it becomes more complex to identify the origin of each data sample to deliver data to the correct application, with the consequence of reducing data accuracy. In order to overcome these limitations, we propose a MDF technique that divides the monitored interval into a set of intervals (non-overlapped intervals and overlapped intervals) and attributes each interval to an abstract sensor. Then we use MDFs to identify (hidden) correlations in abstract sensors and to exploit such knowledge to monitor the behavior of sensors during their working life. Our proposal is validated through simulations and tests on real nodes.
机译:传统上,无线传感器网络(WSN)仅由单个应用程序负责,但近年来,我们见证了WSN的出现,该传感器允许在多个应用程序之间共享传感和通信基础结构,从而优化了资源的使用。随着WSN中应用程序数量的增加,将生成越来越多的传感器生成的数据,可以从中提取有用的信息。这些网络的主要要求是节省能源,以延长其使用寿命。然而,无线传感器和致动器通常依靠电池作为其能量源,其替换是不希望的或不可行的。在延长网络寿命的方法中,多传感器数据融合(MDF)是使用最广泛的方法之一。传统的MDF无法识别不同的上下文,因为它们是使用针对网络的特定于应用程序的设计来设计的。随着应用程序数量的增加,应用程序数据范围会重叠,并且识别每个数据样本的来源以将数据传送到正确的应用程序变得更加复杂,从而降低了数据准确性。为了克服这些限制,我们提出了一种MDF技术,该技术将监视的间隔分为一组间隔(非重叠间隔和重叠间隔),并将每个间隔归因于抽象传感器。然后,我们使用MDF来识别(隐藏)抽象传感器中的相关性,并利用这些知识来监视传感器在其使用寿命期间的行为。我们的建议通过对真实节点的仿真和测试得到验证。

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