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Improvement of forecasting and classification in smart metering systems using a neural compute stick

机译:使用神经计算棒改进智能计量系统中的预测和分类

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Analyzing data on smart meters is a trend increasingly used by utility companies as it allows a better understanding of data directly from the source of origin. New distributed computing architectures like edge computing have given advance to improve data analytics. Generally, the capacity of such devices, including smart meters, is quite limited, so the use of specialized auxiliary hardware has begun to be used in these devices. The present work shows the results of using a neural stick compute for forecasting and data classification processes within smart metering systems. The results show that the processing times can be remarkably improved with the use of stick computers having a suitable model for artificial neural networks.
机译:公用事业公司越来越倾向于使用智能电表分析数据,因为它可以直接从源头更好地理解数据。像边缘计算这样的新的分布式计算体系结构已经为改善数据分析做出了很大的贡献。通常,此类设备(包括智能电表)的容量非常有限,因此在这些设备中已开始使用专用辅助硬件。本工作显示了使用神经棒计算进行智能计量系统内的预测和数据分类过程的结果。结果表明,通过使用具有适用于人工神经网络模型的棒形计算机,可以显着改善处理时间。

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