基于概率模型的大规模网络学习中视频观看行为的幂律分布

Ni Xue, Huan He, Jun Liu, Q. Zheng, Tian Ma, Jianfei Ruan, B. Dong
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引用次数: 2

摘要

在互联网时代,e-Learning已经广泛普及,并产生了大量的视频观看行为日志数据。通过对这些日志数据的分析和挖掘,观察到不同于小规模e-Learning或传统课堂环境的显著的观看行为幂律分布(PLD)。在本文中,我们将pld的生成机制应用于分析大型电子学习平台的日志数据,以发现影响视频观看行为的因素。首先,从日志数据中发现与视频观看行为相关的四个因素,包括观看视频的数量、观看视频的开始日期、期末考试日期和入学时间。在此基础上,提出了基于这四个因素的观看行为概率模型。最后,用9门在线课程验证了模型的准确性,每门课程都招收了1000多名学生。此外,本文还对模型的应用进行了分析,并为教师提高学生成绩提供了一些有价值的建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Probabilistic Modeling Towards Understanding the Power Law Distribution of Video Viewing Behavior in Large-Scale e-Learning
In the era of internet, e-Learning has become vastly widespread and generated huge amount of log data of video viewing behavior. Through analyzing and mining these log data, significant Power Law Distribution (PLD) of viewing behavior is observed, which is different from small-scale e-Learning or traditional classroom environment. In this paper, we apply the mechanisms for generating the PLDs in analyzing log data of a large-scale e-Learning platform to discover the factors influencing the video viewing behavior. Firstly, four factors correlated to the video viewing behavior are discovered from log data, including the number of videos viewed, the start date of viewing videos, the date of final exam, and the duration of enrollment. Furthermore, we present a probabilistic model of viewing behavior based on the four factors. Finally, the accuracy of the model is validated with nine online courses in which each course enrolled more than 1,000 students. In addition, we analyze the application of the proposed model and provide some valuable suggestions for teachers to improve the performance of students.
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