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Personalized Network Learning Recommendation System Algorithm for Deep Learning Mode in Grid Environment

机译:网格环境下深度学习模式的个性化网络学习推荐系统算法

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With the continuous development of Internet technology, the phenomenon of information overload has appeared in the course learning resources in the network, which increases the difficulty for students to acquire learning resources. To this end, the distributed processing center is built in the grid environment, which enhances the efficiency of data collection and data mining. Combined with the deep learning training mode, the scoring matrix of students and curriculum resources can be effectively obtained, and the scoring matrix is similar. The calculation establishes a recommendation queue for personalized learning recommendation, and finally recommends through the information in the recommendation queue, which effectively improves the accuracy and efficiency of personalized network learning recommendation.
机译:随着Internet技术的不断发展,网络课程学习资源中出现了信息过载的现象,增加了学生获取学习资源的难度。为此,在网格环境中构建了分布式处理中心,从而提高了数据收集和数据挖掘的效率。结合深度学习训练模式,可以有效地获得学生和课程资源的得分矩阵,并且得分矩阵相似。该计算建立了个性化学习推荐的推荐队列,最后通过推荐队列中的信息进行推荐,有效地提高了个性化网络学习推荐的准确性和效率。

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