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COVID-19 大流行对高等教育的影响:知识获取过程的数据分析。

Effects of the COVID-19 pandemic in higher education: A data driven analysis for the knowledge acquisition process.

机构信息

Instituto de Física de Líquidos y Sistemas Biológicos (UNLP-CONICET), La Plata, Argentina.

Departamento de Ciencias Básicas, Facultad de Ingeniería, Universidad Nacional de La Plata (UNLP), La Plata, Argentina.

出版信息

PLoS One. 2022 Sep 7;17(9):e0274039. doi: 10.1371/journal.pone.0274039. eCollection 2022.

Abstract

The COVID-19 pandemic abruptly changed the classroom context and presented enormous challenges for all actors in the educational process, who had to overcome multiple difficulties and incorporate new strategies and tools to construct new knowledge. In this work we analyze how student performance was affected, for a particular case of higher education in La Plata, Argentina. We developed an analytical model for the knowledge acquisition process, based on a series of surveys and information on academic performance in both contexts: face-to-face (before the onset of the pandemic) and virtual (during confinement) with 173 students during 2019 and 2020. The information collected allowed us to construct an adequate representation of the process that takes into account the main contributions common to all individuals. We analyzed the significance of the model by means of Artificial Neural Networks and a Multiple Linear Regression Method. We found that the virtual context produced a decrease in motivation to learn. Moreover, the emerging network of contacts built from the interaction between peers reveals different structures in both contexts. In all cases, interaction with teachers turned out to be of the utmost importance in the process of acquiring knowledge. Our results indicate that this process was also strongly influenced by the availability of resources of each student. This reflects the reality of a developing country, which experienced prolonged isolation, giving way to a particular learning context in which we were able to identify key factors that could guide the design of strategies in similar scenarios.

摘要

新冠疫情突然改变了课堂环境,给教育过程中的所有参与者带来了巨大挑战,他们不得不克服诸多困难,并采用新的策略和工具来构建新知识。在这项工作中,我们分析了阿根廷拉普拉塔特定高等教育案例中,学生表现受到的影响。我们为知识获取过程开发了一个分析模型,该模型基于一系列调查以及两个时期(疫情前的面对面教学和隔离期间的线上教学)的学术表现信息,涉及 173 名学生在 2019 年和 2020 年的学习情况。收集到的信息使我们能够构建一个充分考虑到所有人共同主要贡献的过程的适当表示。我们通过人工神经网络和多元线性回归方法分析了模型的显著性。我们发现,虚拟环境降低了学习动机。此外,从同伴之间的相互作用中构建的新兴联系网络揭示了两种情况下不同的结构。在所有情况下,与教师的互动对于知识获取过程至关重要。我们的结果表明,这个过程也受到每个学生资源可用性的强烈影响。这反映了一个发展中国家的现实,该国经历了长时间的隔离,形成了一种特殊的学习环境,我们能够从中确定出在类似场景中指导策略设计的关键因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d229/9451099/4fdab3f0ee51/pone.0274039.g001.jpg

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