卷积神经网络算法在在线教育情感识别中的应用

Q2 Social Sciences
Zhaoxing Xu
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引用次数: 0

摘要

教学环境的设置是教学情感识别的关键因素,其优劣直接决定着师生之间的教与学效果。在网络教育中,学生情绪的变化没有得到教师的重视和处理。尤其是年轻学生,他们的自学能力和自律能力较差,这进一步影响了学习。本文提出了一种改进的卷积神经网络算法,用于建立学生成绩管理的决策树模型。实验结果表明,改进的卷积神经网络算法提高了决策树的构建速度,减少了算法的计算和执行时间。本文提出的改进算法具有良好的分类效果。该模型为情感识别大数据在教育教学中的拓展和应用提供了参考,为网络学校个性化教学提供了可行的实践模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of Convolution Neural Network Algorithm in Online Education Emotion Recognition
The setting of teaching environment is the key factor of teaching emotion recognition, and its superiority directly determines the teaching and learning effect between teachers and students. During online education, the changes of students' emotions are not paid attention to and addressed by teachers. Especially for young students, their self-study ability and self-discipline are poor, which further affects the learning. This paper proposes an improved convolutional neural network algorithm to create a decision tree model for managing students' scores. The experimental results show that the improved convolutional neural network algorithm improves the construction speed of the decision tree and reduces the calculation and execution time of the algorithm. The improved algorithm proposed in this paper has a good classification effect. The model provides a reference for the expansion and application of emotion recognition big data in education and teaching, and a feasible practical model for personalized teaching in online schools.
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CiteScore
2.40
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0.00%
发文量
68
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