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Intent Classification for a Management Conversational Assistant

机译:管理会话助理的意图分类

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Intent classification is an essential step in processing user input to a conversational assistant. This work investigates techniques of intent classification of chat messages used for communication among software development teams with the aim of building an intent classifier for a management conversational assistant integrated into modern communication platforms used by developers. Experiments conducted using rule-based and common ML techniques have shown that careful choice of classification features has a significant impact on performance, and the best performing model was able to obtain a classification accuracy of 72%. A set of techniques for extracting useful features for text classification in the software engineering domain was also implemented and tested.
机译:意图分类是处理对会话助手的用户输入的重要步骤。这项工作调查了用于软件开发团队中通信的聊天消息的意图分类,以便为管理会话助理构建一个意图分类,集成到开发人员使用的现代通信平台中。使用规则和普通的ML技术进行的实验表明,仔细选择分类特征对性能产生重大影响,并且最佳性能的模型能够获得72%的分类精度。还实现了一组用于提取软件工程域中的文本分类的有用特征的技术,并进行了测试。

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