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Towards a Time Series Approach for the Classification and Evaluation of Collaborative Activities

机译:面向时间序列方法的协作活动的分类和评估

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The analysis and evaluation of computer-supported collaborative activities is a complex and tedious task. However, it is necessary in order to support collaborative scenarios, to scaffold the collaborative knowledge building and to evaluate the learning outcome. Various automated techniques have been proposed to minimize the workload of human evaluators and speed up the process. In this study, we propose a memory based learning model for the analysis, classification and evaluation of collaborative activities that makes use of time series techniques along with logfile analysis. We argue that the classification of collaborative sessions, with respect to their time series attributes, may be related to their qualitative aspects. Based on this rationale, we explore the use of the model under various settings. The results of the model are compared to assessments made by expert evaluators using a rating scheme. Correlation and error analyses are further conducted.
机译:对计算机支持的协作活动的分析和评估是一项复杂而乏味的任务。但是,为了支持协作方案,支持协作知识构建和评估学习成果,这是必要的。已经提出了各种自动化技术以最小化人类评估者的工作量并加速该过程。在这项研究中,我们提出了一种基于记忆的学习模型,用于对协作活动进行分析,分类和评估,该模型利用时间序列技术以及日志文件分析。我们认为,关于协作会议的时间序列属性,其分类可能与它们的质量方面有关。基于此原理,我们探索了在各种设置下该模型的使用。将模型的结果与专家评估员使用评级方案进行的评估进行比较。进一步进行相关性和误差分析。

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