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Sequence Based Course Recommender for Personalized Curriculum Planning

机译:基于序列的课程推荐,用于个性化课程规划

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Students in higher education need to select appropriate courses to meet graduation requirements for their degree. Selection approaches range from manual guides, on-line systems to personalized assistance from academic advisers. An automated course recommender is one approach to scale advice for large cohorts. However, existing recommenders need to be adapted to include sequence, concurrency, constraints and concept drift. In this paper, we propose the use of recent deep learning techniques such as Long Short-Term Memory (LSTM) Recurrent Neural Networks to resolve these issues in this domain.
机译:高等教育学生需要选择合适的课程以满足其学位的毕业要求。选择方法从手动指南,在线系统到学术顾问的个性化帮助。自动化课程推荐人是一种为大型队列进行建议的一种方法。但是,现有的推荐人需要适应序列,并发,约束和概念漂移。在本文中,我们建议使用近期深度学习技术,例如长期内存(LSTM)经常性神经网络,以解决该域中的这些问题。

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