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Context-based services selection and recommendation through P-learning platform

机译:通过P学习平台进行基于上下文的服务选择和推荐

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摘要

Taking into account continuously growing content wealth of pervasive environments generally, user needs assistance to find what he want in short time. Specifically in pervasive learning environment where learners are surrounded by numerous suppliers and the rich resources offered by the learning platform, the personalized recommender systems seems important for providing user by convenience and fulfil his needs. However, existing learning recommender systems interest to the user appraisal and taste while the contextual constraints due to the heterogeneity may influence the service consumption. We propose in this paper an hybrid recommender approach based on contextual information and memory-based filtering.
机译:考虑到普遍存在的环境中不断增长的内容财富,用户需要帮助以在短时间内找到他想要的东西。特别是在普遍的学习环境中,学习者被众多供应商所包围,学习平台提供了丰富的资源,个性化的推荐系统对于为用户提供便利和满足其需求似乎很重要。但是,现有的学习推荐系统对用户的评估和品味很感兴趣,而由于异构性引起的上下文约束可能会影响服务的使用。我们在本文中提出了一种基于上下文信息和基于内存的过滤的混合推荐方法。

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