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Formalizing Logic Based Rules for Skills Classification and Recommendation of Learning Materials

机译:基于逻辑的形式化技能分类和学习材料推荐规则

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First-order logic based data structure have knowledge representations in Prolog-like syntax. In an agent based system where beliefs or knowledge are in FOL ground fact notation, such representation can form the basis of agent beliefs and inter-agent communication. This paper presents a formal model of classification rules in first-order logic syntax. In the paper, we show how the conjunction of boolean [Passed, Failed] decision predicates are modelled as Passed(N) or Failed(N) formulas as well as their implementation as knowledge in agent oriented programming for the classification of students’ skills and recommendation of learning materials. The paper emphasizes logic based contextual reasoning for accurate diagnosis of students’ skills after a number of prior skills assessment. The essence is to ensure that students attain requisite skill competences before progressing to a higher level of learning.
机译:基于一阶逻辑的数据结构具有类似于Prolog语法的知识表示。在信念或知识采用FOL地面事实符号的基于代理的系统中,此类表示形式可以构成代理信念和代理间通信的基础。本文提出了一阶逻辑语法中的分类规则的形式模型。在本文中,我们展示了布尔[Passed,Failed]决策谓词的联结如何建模为Passed(N)或Failed(N)公式,以及它们如何在面向主体的编程中作为知识的实现,用于对学生的技能和能力进行分类推荐学习资料。该论文强调了基于逻辑的上下文推理,可以在对许多先前的技能进行评估之后对学生的技能进行准确诊断。本质是确保学生在进入更高水平的学习之前具备必要的技能能力。

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