大型实时同行评估系统的剖析

Xoeseko Nyomi, L. Moccozet
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引用次数: 1

摘要

在过去的几十年里,我们看到了数字教育工具的好处,它增加了互动,并允许对学生的知识进行更定期的评估。然而,现有的建议在如何根据教学大纲全面评估学生的生产技能方面是有限的。在自动作文评分,自动简答评分或类似的方法方面有一些尝试,这些方法可以提供反馈而不一定提供分数。就开放式问题的快速课堂反馈而言,对于我们想要帮助的人群来说,没有多少有用的解决方案。有必要提出更多的建议,重点关注评估或被评估的人。考虑到大规模教学的压力,以人为本的技术如何帮助开发综合评价方法?在本文中,我们提出并实施了一种在本科教育背景下进行大规模定性评估的方法。为了做到这一点,我们使用单词向量来可视化学生在回应提示时的想法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Anatomy of a large-scale real-time peer evaluation system
In the past decades, we have seen benefits from digital education tools to increase interaction and allow for more regular assessment of students’ knowledge. The existing suggestions are however limited in how comprehensively they can assess students’ production skills based on the taught syllabus. There are some endeavours in the area of automated essay scoring, automated short answer grading or similar methods which would provide feedback without necessarily providing a grade. In terms, of rapid in class feedback of open ended questions there aren’t many helpful solution for the population we want to help. More suggestions which focus on the people either evaluating or being evaluated is necessary. Given the pressures of teaching at scale, how can human-centered technology aid in the development of comprehensive evaluation methods? In this paper, we suggest and implement a method to conduct qualitative evaluations for large scale settings in the context of undergraduate education. To do this, we use word vectors to visualize what students think in response to a prompt.
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