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Research and Design of Personalized Recommendation System Model for Course Learning Based on Deep Learning in Grid Environment

机译:基于深度学习在网格环境中的课程学习的个性化推荐系统模型的研究与设计

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With the development of online courses and MOOCs, the traditional course learning recommendation platform can no longer meets the individual needs of learners at different levels. After careful analysis of the current recommendation methods, the grid environment is proposed based on the grid environment. A deep learning-based curriculum learning personalized recommendation system model, which collects basic data, professional basic data, and curriculum basic data for a large number of students, establishes a personalized mathematical model for curriculum recommendation, and trains learning models and student data. According to the results, the training parameters are continuously adjusted to accurately recommend the course learning resources for students, thereby reducing resource processing and retrieval time, and improving students' efficiency in course learning.
机译:随着在线课程和MOOC的发展,传统课程学习推荐平台无法达到不同层次的学习者的个人需求。经过仔细分析当前推荐方法后,基于网格环境提出网格环境。基于深度学习的课程学习个性化推荐系统模型,为大量学生提供基本数据,专业的基本数据和课程基本数据,为课程推荐建立个性化数学模型,并列车学习模型和学生数据。根据结果​​,不断调整培训参数,以准确推荐学生的课程学习资源,从而降低资源处理和检索时间,并在课程学习中提高学生的效率。

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