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Research on the Data Analysis of College Classroom Teaching Behavior by Using Deep Learning

机译:深入学习研究大学课堂教学行为数据分析研究

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With education stepping into the era of intelligence, intelligent classroom behavior recognition of students is becoming more and more important. However, due to the complexity and variety of students' classroom behavior, it is difficult to recognize intelligent students' classroom behavior. In order to improve the intensive reading of intelligent student behavior recognition, this paper uses a variety of data sources for cross comparison, and uses the mature random forest algorithm and correction matrix in the data analysis of classroom teaching behavior in Colleges and universities. Through the analysis, it shows that deep learning can timely and accurately feedback the classroom teaching phenomenon and the data and intelligence of teaching activities, which is conducive to the improvement of teaching methods, the optimization of classroom teaching and management, to improve the efficiency of teaching and learning and help the teaching reform.
机译:随着教育进入智力时代,智能课堂行为认可学生越来越重要。 然而,由于学生课堂行为的复杂性和各种各样,很难认识到智能学生的课堂行为。 为了提高智能学生行为识别的密集读数,本文使用各种数据来源进行交叉比较,并在高校教室教学行为的数据分析中使用成熟随机林算法和校正矩阵。 通过分析,它表明深度学习可以及时准确地反馈课堂教学现象和教学活动的数据和智能,这有利于提高教学方法,课堂教学和管理的优化,提高效率 教学和学习,帮助教学改革。

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