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Evaluation model of classroom teaching quality based on improved RVM algorithm and knowledge recommendation

机译:基于改进RVM算法和知识推荐的课堂教学质量评估模型

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摘要

The intelligent evaluation of classroom teaching quality is one of the development directions of modern education. At present, some teaching quality evaluation models have accuracy problems, and the evaluation process is affected by a variety of interference factors, which leads to inaccurate model results, and it is impossible to find out the specific factors that affect teaching. In order to improve the accuracy of classroom teaching quality evaluation, this study improves RVM based on the method of feature extraction and empirical modal decomposition of ACLLMD method, and establishes classroom theoretical teaching quality evaluation model and experimental teaching quality evaluation model based on RVM algorithm. Moreover, this study uses test data to analyze the accuracy and reliability of the evaluation results to verify the feasibility and reliability of the new method. In addition, this study verifies the reliability of this algorithm by comparing with the manual scoring results. The research results show that RVM can be used to construct classroom theory teaching quality evaluation models and experimental teaching quality evaluation models with high accuracy and good reliability.
机译:课堂教学质量智能评价是现代教育的发展方向之一。目前,一些教学质量评价模型存在准确性问题,评价过程受到多种干扰因素的影响,导致模型结果不准确,无法找出影响教学的具体因素。为了提高课堂教学质量评价的准确性,本研究在ACLLMD方法的特征提取和经验模态分解的基础上对RVM进行了改进,建立了基于RVM算法的课堂理论教学质量评价模型和实验教学质量评价模型。此外,本研究还利用测试数据分析了评估结果的准确性和可靠性,以验证新方法的可行性和可靠性。此外,通过与人工评分结果的比较,验证了该算法的可靠性。研究结果表明,RVM可用于构建课堂理论教学质量评价模型和实验教学质量评价模型,具有较高的准确性和可靠性。

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