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User Preference Profiling Based on Speech Recognition for Personalized Recommendation

机译:基于个性化推荐的语音识别的用户偏好分析

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In this paper, we propose a user preference profiling method with speech recognized information for personalized recommendation. Advances in speech recognition technology enable it to be widely incorporated in native application of several operating systems, and also be deployed as Web service application program interface. The accuracy of recognition is high and has shown good performance, however, it is not perfect at 100% yet. With the aim of realizing a personalized recommender system based on a user's preference, we have designed and implemented a profiling method utilizing a user's preferred terms. These important terms are extracted based on a user's browsing behavior. In this study, we extend our method to refine the result of speech recognition and automatically incorporate it into a user preference term database for profiling purpose. By means of several experiments using our prototype, we show the feasibility of our proposed method.
机译:在本文中,我们提出了一种用户偏好分析方法,具有语音识别的信息进行个性化推荐。语音识别技术的进步使其能够广泛地纳入多个操作系统的本机应用中,并且还将部署为Web服务应用程序接口。识别的准确性很高,并且表现出良好的性能,但是,它尚未完美100%。旨在实现基于用户偏好的个性化推荐系统,我们设计并实施了利用用户的首选术语的分析方法。基于用户的浏览行为提取这些重要术语。在这项研究中,我们扩展了我们的方法来改进语音识别的结果,并自动将其整合到用户偏好术语数据库中,以进行分析目的。通过使用我们的原型的几个实验,我们展示了我们所提出的方法的可行性。

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