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Optimization of English Learning Platform Based on a Collaborative Filtering Algorithm

机译:基于协同滤波算法的英语学习平台优化

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This paper provides a detailed description of the recommendation system and collaborative filtering algorithm to optimize the English learning platform through the collaborative filtering algorithm and analyses the algorithmic principles and specific techniques of collaborative filtering. After introducing the recommendation system and collaborative filtering algorithm, this paper elaborates on the theoretical basis and technical principles of the recommendation algorithm based on cognitive ability and difficulty and provides an in-depth analysis of the design and implementation of the recommendation algorithm by combining cognitive diagnosis theory, readability formula, and English knowledge map, which provides a comprehensive and solid theoretical guidance and support for the application development of the online English learning platform. The system is tested by building a Spring Cloud platform, importing actual business data, focusing on the validation of the recommendation model, and connecting the recommendation system to the formal production system to analyse the recommendation effect. Compared with the original recommendation method, the online English learning platform designed and implemented in this paper based on the cognitive ability and difficulty collaborative filtering recommendation algorithm has a better recommendation effect. The system is proved to be well designed and has certain reference and guiding value for the whole web-based online learning platform and has a broader application prospect nowadays and in the future.
机译:本文提供了推荐系统和协作滤波算法的详细描述,通过协作过滤算法优化英语学习平台,并分析了协同滤波的算法原理和特定技术。在介绍了推荐系统和协作过滤算法后,本文根据认知能力和困难,详细说明了推荐算法的理论基础和技术原理,并通过组合认知诊断,深入分析了推荐算法的设计和实现理论,可读性公式和英语知识地图,为在线英语学习平台的应用程序开发提供了全面而稳定的理论指导和支持。该系统通过构建弹簧云平台来测试,导入实际业务数据,专注于推荐模型的验证,并将推荐系统连接到正规生产系统,以分析推荐效果。与原始推荐方法相比,在本文中设计和实施的在线英语学习平台基于认知能力和难度协作过滤推荐算法具有更好的推荐效果。该系统被证明是精心设计的,并对整个网络的在线学习平台具有一定的参考和指导价值,并在目前和将来具有更广泛的应用前景。

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