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OPTIMIZATION AND UPDATE SYSTEM FOR DEEP LEARNING MODELS

机译:深层学习模型的优化和更新系统

摘要

Traditionally, a software application is developed, tested, and then published for use to end users. Any subsequent update made to the software application is generally in the form of a human programmed modification made to the code in the software application itself, and further only becomes usable once tested and published by developers and/or publishers, and installed by end users having the previous version of the software application. This typical software application lifecycle causes delays in not only generating improvements to software applications, but also to those improvements being made accessible to end users. To help avoid these delays and improve performance of software applications, deep learning models may be made accessible to the software applications for use in performing inferencing operations to generate inferenced data output for the software applications, which the software applications may then use as desired. These deep learning models can furthermore be improved independently of the software applications using manual and/or automated processes.
机译:传统上,要开发,测试并发布软件应用程序,以供最终用户使用。对该软件应用程序进行的任何后续更新通常都采用对软件应用程序本身中的代码进行人工编程修改的形式,并且进一步只有在开发人员和/或发布者进行测试和发布并由具有以下功能的最终用户安装后才能使用该软件应用程序的先前版本。这种典型的软件应用程序生命周期不仅导致对软件应用程序的改进,而且导致最终用户可以访问的那些改进的延迟。为了帮助避免这些延迟并改善软件应用程序的性能,可以使软件应用程序可以访问深度学习模型,以用于执行推理操作以生成用于软件应用程序的推断数据输出,然后可以根据需要使用该软件应用程序。此外,可以使用手动和/或自动过程独立于软件应用程序来改善这些深度学习模型。

著录项

  • 公开/公告号US2020050443A1

    专利类型

  • 公开/公告日2020-02-13

    原文格式PDF

  • 申请/专利权人 NVIDIA CORPORATION;

    申请/专利号US201916537215

  • 申请日2019-08-09

  • 分类号G06F8/65;G06F8/71;G06N3/08;G06K9/62;G06T5;G06F9/54;

  • 国家 US

  • 入库时间 2022-08-21 11:24:02

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