电子学习环境中ERD的自动评估

Adriano Del Pino Lino, Á. Rocha
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引用次数: 2

摘要

实体关系图(ERD)主要是计算机科学学位,与数据库学科相关。它们是许多评估的重要组成部分。目前,计算机辅助评估被广泛用于多项选择题,然而,它们没有能力更全面地评估学生的知识,除了对与错之外,这对于图表工作是必要的。本研究项目提出了一种创新的ERD自动评估方法。这种方法提出了一种解决方案,以鼓励学生完善他们的解决方案的挑战:除了寻求返回正确结果的答案外,还寻求接近理想解决方案的注释。这种方法有以下优点:(1)学生在实际的绘图活动中获得即时反馈,这使得学生可以重做他的解以获得最优解;(2)将ERD教学理念与在线图表实例完全融合;(3)监控学生的活动,即在每个练习中执行了多少个例子,做了多少次尝试。这项研究是建立一个完全辅助的环境的第一步,例如,为ERD教学提供自动评估,教授可以从纠正图表的艰巨工作中解脱出来,可以执行更多相关的教学任务。该方法基于机器学习技术,使用从ERD中提取的结构化查询语言(SQL)指标和专家评分来创建预测模型。该解决方案可以适用于其他类型的图,例如统一建模语言(UML)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic evaluation of ERD in e-learning environments
Entity Relationship Diagram (ERD) are largely in computer science degrees, related to database discipline. They are an important part of many evaluations. Currently, computer aided assessments are widely used for multiple choice questions, however, they do not have the ability to evaluate a student's knowledge more comprehensively, going beyond right or wrong, which is necessary for the job with the diagram. This research project presents an innovative approach for automatic evaluation of ERD. This approach proposes a solution to the challenge of encouraging students to perfect their solution: seeking, in addition to a response that returns the correct result, a note that approaches the ideal solution. This approach has the following advantages: (1) the student receives instant feedback during the practical diagramming activity, which allows the student to redo his solution for an optimal solution; (2) complete integration of ERD teaching concepts with examples of online diagrams; (3) monitoring the student's activities, i.e. how many examples were executed in each exercise, how many attempts were made. This research is a first step in building a fully assisted environment, for example, with automatic evaluation for ERD teaching, where the professor is freed from the arduous work of correcting diagrams and can perform more relevant pedagogical tasks. The method, based on machine learning techniques, uses structured query language (SQL) metrics extracted from the ERD and experts grade to create the prediction model. The solution can be adapted to other types of diagrams, such as the Unified Modeling Language (UML).
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