Application research of support vector machine in E-Learning for personality

Wen Gong, Wan-sen Wang
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引用次数: 17

Abstract

In order to accurately build the learner's learning style in E-Learning, according to the needs and preferences to provide personalized learning materials and harmonious human-computer interaction environment. This paper combines Felder-Silverman learning style with support vector machine technology, and use machine learning technologies for learners to build dynamic learning style. Through the analysis of the Emotion and recognition interaction of the personalized E-Learning based on statistical learning theory and support vector machine technology, it demonstrates the correctness and feasibility using support vector machine to build learning styles. The combination of support vector machine, emotion and recognition interaction in the personalized E-Learning makes great contribution to build human-computer interaction environment.
支持向量机在个性在线学习中的应用研究
为了在E-Learning中准确构建学习者的学习风格,根据需要和偏好提供个性化的学习材料和和谐的人机交互环境。本文将Felder-Silverman学习风格与支持向量机技术相结合,利用机器学习技术为学习者构建动态学习风格。通过对基于统计学习理论和支持向量机技术的个性化E-Learning的情感与识别交互分析,论证了利用支持向量机构建学习风格的正确性和可行性。个性化E-Learning中支持向量机、情感和识别交互的结合为构建人机交互环境做出了重要贡献。
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