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An Approach to Deep Learning Service Provision with Elastic Remote Interfaces

机译:一种具有弹性远程接口的深度学习服务提供的方法

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Deep learning has been widely applied for computer vision, natural language processing, and information retrieval etc. Using a deep learning framework can reduce learning curve of beginners facilitating them to get involved with deep learning algorithms. Current deep learning frameworks can mainly be divided into traditional local deployment and cloud-based platforms. However, the two forms cannot be considered at the same time in terms of debugging and remote access. This paper focuses on the logical isolation between deep learning algorithm design and actual business execution, and it proposes an elastic framework that can resolve the contradiction between internal improvement and external access, which can improve the efficiency of both algorithm design researchers and business requirements department engineers.
机译:深度学习已广泛应用于计算机视觉,自然语言处理和信息检索等。使用深度学习框架可以减少初学者的学习曲线,从而帮助他们参与深度学习算法。当前的深度学习框架主要可以分为传统的本地部署和基于云的平台。但是,就调试和远程访问而言,不能同时考虑这两种形式。本文着重于深度学习算法设计与实际业务执行之间的逻辑隔离,并提出了一种弹性框架,可以解决内部改进与外部访问之间的矛盾,从而可以提高算法设计研究人员和业务需求部门工程师的效率。

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