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Pervasive Data Science on the Edge

机译:边缘普及数据科学

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摘要

Proliferation of sensors into everyday environments is resulting in a connected world that generates large volumes of complex data. This data is opening new scientific and commercial investigations in fields such as pollution monitoring and patient health monitoring. Parallel to this development, deep learning has matured into a powerful analytics technique to support these investigations. However, computing and resource requirements of deep learning remain a challenge, often forcing analysis to be carried at remote third-party data centers. In this paper, we describe an alternative computing as a service model where available smart devices opportunistically form micro-data centers that can support deep learning-based investigations of data streams generated by sensors. Our model enables smart homes, smart buildings, smart offices, and other types of smart spaces to become providers of powerful computation as a service, enabling edge analytics, and other applications that require pervasive (in-space) decisioning.
机译:传感器在日常环境中的扩散导致连接的世界产生大量复杂的数据。该数据正在污染监测和患者健康监测等领域开启新的科学和商业研究。与此并行的是,深度学习已经发展成为一种强大的分析技术,可以支持这些研究。但是,深度学习的计算和资源需求仍然是一个挑战,通常迫使分析必须在远程第三方数据中心进行。在本文中,我们将替代计算描述为一种服务模型,在该模型中,可用的智能设备有机会形成微数据中心,这些微数据中心可以支持对传感器生成的数据流进行基于深度学习的调查。我们的模型使智能家居,智能建筑,智能办公室和其他类型的智能空间成为功能强大的计算即服务的提供者,从而支持边缘分析以及其他需要广泛(空间)决策的应用程序。

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