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PROACTIVE NOTIFICATION OF RELEVANT FEATURE SUGGESTIONS BASED ON CONTEXTUAL ANALYSIS

机译:基于上下文分析的相关功能建议的主动通知

摘要

The present disclosure relates to processing operations configured to tailor notifications of productivity feature suggestions based on predictive relevance to a context associate with user access to an electronic document. Machine learning modeling executes a contextual evaluation of user access to predictively determine relevance of a suggestion that relates to: 1) a confidence in the quality of the suggestion; and 2) a timing prediction as to the urgency for surfacing the suggestion to the user so that the suggestion is most applicable. Example notifications are proactive interruptions that aim to aid processing efficiency in task execution as well as an improve user interface experience when users work with an application/service and/or an application platform that comprises a suite of applications/services. A manner in which the notification is presented may vary based on the confidence in the relevance of the suggestion and timing relevance for interrupting a user's workflow.
机译:本公开涉及被配置为基于与与用户对电子文档的访问相关联的上下文的预测相关性来定制生产率特征建议的通知的处理操作。机器学习建模执行用户访问的上下文评估,以预测性地确定与以下内容相关的建议的相关性:1)对建议质量的信心; 2)关于将建议呈现给用户以使建议最适用的紧迫性的时间预测。示例通知是主动中断,旨在在用户使用应用程序/服务和/或包含一组应用程序/服务的应用程序平台工作时帮助任务执行中的处理效率以及改善的用户界面体验。呈现通知的方式可以基于对建议的相关性的置信度和用于中断用户的工作流的时间相关性而改变。

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