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Building a Semantic Representation for Personal Information

机译:建立个人信息的语义表示

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A typical collection of personal information contains many documents and mentions many concepts (e.g., person names, events, etc.). In this environment, associative browsing between these concepts and documents can be useful as a complement for search. Previous approaches in the area of semantic desktops aimed at addressing this task. However, they were not practical because they require tedious manual annotation by the user. In this work, we suggest a methodology and a prototype system for building a semantic representation of personal information based on click feedback from the user. We employed a feature-based model of associations between the concepts and documents. Our initial evaluation shows that the suggested semantic representation can play an important role in the known-item finding task and that the system can learn to predict such associations with a small amount of click data.
机译:典型的个人信息收集包含许多文档,并提及许多概念(例如,人名,事件等)。在这种环境下,这些概念和文档之间的关联浏览可以作为搜索的补充。语义桌面领域中的先前方法旨在解决此任务。但是,它们不切实际,因为它们需要用户进行繁琐的手动注释。在这项工作中,我们建议一种方法和一个原型系统,用于基于用户的点击反馈来构建个人信息的语义表示。我们采用了基于特征的概念与文档之间的关联模型。我们的初步评估表明,建议的语义表示可以在已知项查找任务中发挥重要作用,并且系统可以学习使用少量点击数据来预测此类关联。

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