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Towards Applying Deep Learning to the Internet of Things: A Model and a Framework

机译:朝向物联网应用深入学习:模型和框架

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Deep Learning (DL) modeling has been a recent topic of interest. With the accelerating need to embed Deep Learning Networks (DLNs) to the Internet of Things (IoT) applications, many DL optimization techniques were developed to enable applying DL to IoTs. However, despite the plethora of DL optimization techniques, there is always a trade-off between accuracy, latency, and cost. Moreover, there are no specific criteria for selecting the best optimization model for a specific scenario. Therefore, this research aims at providing a DL optimization model that eases the selection and re-using DLNs on IoTs. In addition, the research presents an initial design for a DL optimization model management framework. This framework would help organizations choose the optimal DL optimization model that maximizes performance without sacrificing quality. The research would add to the IS design science knowledge as well as the industry by providing insights to many IT managers to apply DLNs to IoTs such as machines and robots.
机译:深度学习(DL)建模是最近的兴趣主题。随着嵌入深度学习网络(DLNS)到物联网(IOT)应用程序的需要,开发了许多DL优化技术,以实现将DL应用于IOT。但是,尽管有多种DL优化技术,但在准确性,延迟和成本之间总会有折衷。此外,没有用于选择特定场景的最佳优化模型的具体标准。因此,本研究旨在提供DL优化模型,可以在物联网上轻松选择和重新使用DLN。此外,该研究表明了DL优化模型管理框架的初始设计。此框架将帮助组织选择最佳DL优化模型,可在不牺牲质量的情况下最大限度地提高性能。该研究将增加是设计科学知识以及业界,通过为许多IT经理提供DLNS将DLNS应用于机器和机器人等。

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