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首页> 外文期刊>International Journal of Continuing Engineering Education and Life-long Learning >Evaluation of learners' online learning behaviour based on the analytic hierarchy process
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Evaluation of learners' online learning behaviour based on the analytic hierarchy process

机译:基于分析层次过程的学习者在线学习行为的评估

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摘要

The online learning behaviour has become an important factor in predicting the learning achievement. Evaluating online learning behaviour is one of the hot topics in the field of IT education, but does not carry out specific weights and score distribution. Therefore, the online learning behaviour data from the 'Moso Teach' cloud platform was analysed by correlation analysis, cluster analysis and analytic hierarchy process analysis. We found that problem-solving behaviour of learners is the least, which is not common in online learning behaviour, while social interaction behaviour is better than problem-solving behaviour, and resource learning behaviour is the most common in online learning. The score distribution diagram of resource learning behaviour shows an inverse s-shaped curve, while the curves of the score distribution diagram of social interaction behaviour and problem solving behaviour are close to a straight line. There are learning achievement differences in resource learning behaviour and problem-solving behaviour, and core-marginal differences in resource learning behaviour and social interaction behaviour.
机译:在线学习行为已成为预测学习成果的重要因素。评估在线学习行为是IT教育领域的热门话题之一,但不能进行特定的重量和得分分配。因此,通过相关分析,集群分析和分析层次处理分析分析了“摩梭教导”云平台的在线学习行为数据。我们发现学习者的解决问题是最少的,在线学习行为中不常见,而社会互动行为比解决问题的行为更好,资源学习行为是在线学习中最常见的。资源学习行为的得分分配图显示了逆S形曲线,而社会交互行为的得分分布图的曲线靠近直线。资源学习行为和问题解决行为的学习成就差异,以及资源学习行为和社会互动行为的核心边缘差异。

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