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Service-Oriented Pervasive Platform Supporting Machine Learning Applications in Smart Buildings

机译:面向服务的普及平台支持智能建筑中的机器学习应用

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摘要

Following the success of image recognition, machine learning approaches have recently been proposed to improve the efficiency for such systems as industry operation and maintenance, smart buildings, and smart homes. These applications are beginning to be deployed in pervasive environments. This poses greater stress in maintaining the quality of the applications. To date, there is no architecture and tools developed that can automatically support application quality maintenance. Even worse, there is no clear definition on the requirements. In this paper, we present initial experiments that we conducted with real use cases pertaining to Industry 4.0 and discuss a set of requirements that should be met by pervasive platforms to better support AI-based applications running in the edge.
机译:随着图像识别的成功,最近提出了机器学习方法,以提高诸如工业运营和维护,智能建筑和智能家居等系统的效率。这些应用程序已开始部署在普遍的环境中。这在保持应用程序质量方面带来了更大的压力。迄今为止,还没有开发出可以自动支持应用程序质量维护的体系结构和工具。更糟糕的是,对需求没有明确的定义。在本文中,我们介绍了我们在与Industry 4.0有关的实际用例中进行的初始实验,并讨论了通用平台应满足的一组要求,以更好地支持在边缘运行的基于AI的应用程序。

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