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An Autonomic Approach to Real-Time Predictive Analytics Using Open Data and Internet of Things

机译:使用开放数据和物联网进行实时预测分析的自主方法

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摘要

Public datasets are becoming more and more available for organizations. Both public and private data can be used to drive innovations and new solutions to various problems. The Internet of Things (IoT) and Open Data are particularly promising in real time predictive data analytics for effective decision support. The main challenge in this context is the dynamic selection of open data and IoT sources to support predictive analytics. This issue is widely discussed in various domains including economics, market analysis, energy usage, etc. Our case study is the prediction of energy usage of a building using open data and IoT. We propose a two-step solution: (1) data management: collection, filtering and warehousing and (2) data analytics: source selection and prediction. This work has been evaluated in real settings using IoT sensors and open weather data.
机译:公共数据集对于组织越来越可用。公共数据和私人数据均可用于推动创新和针对各种问题的新解决方案。物联网(IoT)和开放数据在实时预测数据分析中提供有效的决策支持特别有前途。在这种情况下,主要挑战是动态选择开放数据和物联网源以支持预测分析。在经济学,市场分析,能源使用等各个领域,都对此问题进行了广泛讨论。我们的案例研究是使用开放数据和物联网对建筑物的能源使用进行预测。我们提出了一个两步解决方案:(1)数据管理:收集,过滤和仓储以及(2)数据分析:源选择和预测。已使用IoT传感器和开放天气数据在真实环境中对这项工作进行了评估。

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