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A language independent user adaptable approach for word auto-completion

机译:单词自动完成的语言独立用户可适应方法

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In this paper, we address the problem of word auto-completion for free text (e.g. messages, emails, articles, poems, etc.) written in different languages. We focus on improving the user experience by developing a user-oriented model that is able to learn different writing styles, while still providing initial predictions without any user written documents. We show that by learning from the user, the performance of an auto-completion system can be improved by up to 18% compared to a generic, not user-adaptable approach. In order to keep query processing times low, we deploy a binary search technique that retrieves groups of words from an inverted index based on their first letters. This retrieval method reduces the query processing time by up to 80%.
机译:在本文中,我们解决了以不同语言编写的自由文本(例如消息,电子邮件,文章,诗歌等)的单词自动完成问题。我们专注于通过开发能够学习不同的编写样式的面向用户的模型来改善用户体验,同时仍提供没有任何用户编写文档的初始预测。我们表明,通过从用户学习,与通用而非用户可适应的方法相比,可以提高自动完成系统的性能最多可提高18%。为了使查询处理时间保持低,我们部署了基于其第一个字母从反相索引中检索单词组的二进制搜索技术。此检索方法将查询处理时间缩短至多80%。

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