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A rule-based approach in Bloom's Taxonomy question classification through natural language processing

机译:通过自然语言处理对盛开的分类问题分类进行规则的方法

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This paper describes a rule-based approach to analyze and classify written examination questions through natural language processing for computer programming subjects. In general, Bloom's Taxonomy or the Taxonomy of Educational Objectives (TEO) acts as a main guideline in assessing a student's cognitive level. However, academicians need to design the appropriate questions and categorize it to the cognitive level of TEO manually. Our aim is to provide lecturers with a tool that can ease their task to assess the student's cognitive levels from the written examination questions. This paper describes a natural language processing technique to analyze the cognitive levels of Bloom's taxonomy for each question through the development of rules. Preliminary results from the experiments show that it is a viable approach to help categorize the questions automatically according to Bloom's Taxonomy.
机译:本文介绍了一种基于规则的方法来分析和分类通过计算机编程对象的自然语言处理来分析笔试问题。 一般而言,盛开的分类物或教育目标的分类(TEO)是评估学生认知水平的主要指导。 然而,院士需要设计适当的问题,并手动将其分类到TEO的认知水平。 我们的目标是为讲师提供一种工具,可以缓解他们的任务,以从书面考试问题中评估学生的认知水平。 本文介绍了一种自然语言处理技术,通过制定规则来分析每个问题的盛开分类的认知水平。 实验的初步结果表明,这是一种可行的方法,可以根据盛开的分类法自动对问题进行分类。

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