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Mining educational data: A focus on learning analytics

机译:挖掘教育数据:专注于学习分析

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摘要

Data mining is a process of finding anomalies, implicit patterns, and correlations within large data sets to predict outcomes, or in other words, the search for relationships and global patterns that exist, but are `hidden' among the vast amounts of data. When applied to the educational domain, data mining is a powerful tool that enables better understanding of relationships, structure, patterns, and causal pathways which provide students the cognitive strategies to think critically, make decisions, and solve problems. The talk will discuss the methodology and results of this research, present the extracted knowledge, and describe its importance in the teaching-learning space. Recent developments engineered to capture and store non-cognitive affective-domain features, such as interest and persistence will be addressed. The objective is evidence-centered design and the data mining framework acknowledges that assessments entail different levels of confidence and risk.
机译:数据挖掘是在大型数据集中查找异常,隐式模式和相关性以预测结果的过程,或者换句话说,是搜索存在的但隐藏在大量数据中的关系和全局模式。当将数据挖掘应用于教育领域时,它是一个强大的工具,可以更好地理解关系,结构,模式和因果关系,从而为学生提供批判性思考,决策和解决问题的认知策略。演讲将讨论本研究的方法和结果,介绍提取的知识,并描述其在教学领域中的重要性。旨在捕获和存储非认知情感域功能(例如兴趣和持久性)的最新开发将得到解决。目标是以证据为中心的设计,数据挖掘框架承认评估需要不同程度的置信度和风险。

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