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DETERMINING A USER-SPECIFIC APPROACH FOR DISAMBIGUATION BASED ON AN INTERACTION RECOMMENDATION MACHINE LEARNING MODEL

机译:基于交互推荐机器学习模型的用户特定消解方法

摘要

In various embodiments, a natural language (NL) application implements functionality that enables users to more effectively access various data storage systems based on NL requests. As described, the operations of the NL application are guided by, at least in part, on one or more templates and/or machine-learning models. Advantageously, the templates and/or machine-learning models provide a flexible framework that may be readily tailored to reduce the amount of time and user effort associated with processing NL requests and to increase the overall accuracy of NL application implementations.
机译:在各种实施例中,自然语言(NL)应用程序实现了使用户能够基于NL请求更有效地访问各种数据存储系统的功能。如上所述,NL应用程序的操作至少部分地由一个或多个模板和/或机器学习模型指导。有利地,模板和/或机器学习模型提供了可以容易地定制以减少与处理NL请求相关联的时间量和用户工作量并增加NL应用实现的整体准确性的灵活框架。

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