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Pre-assessment and Learning Recommendation Mechanism for a Multi-agent System

机译:多主体系统的预评估和学习推荐机制

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Diagnostic assessment is a vital and effective strategy in any teaching-learning process such that it provides a pre-learning assessment of the learners state of knowing with regard to a given knowledge concept. Current intelligent learning systems still do not integrate effective techniques for evaluating prior knowledge that can be used effectively to diagnose gaps that will inhibit future learning and for making recommendations for learning and tutoring to fill them. In this paper, we present a mechanism for pre-assessment of previous learning upon which the recommendation for a new or appropriate learning level is based. Our approach is based on message passing procedure between agents in a multi-agent system. We have tested the pre-assessment technique with a prototype based on the Jason Agent Speak language, and using learning materials from a structured query language (SQL) revision module.
机译:诊断评估是任何教学过程中至关重要且有效的策略,因此它可以针对特定知识概念对学习者的知情状态提供学习前评估。当前的智能学习系统仍然没有集成用于评估先验知识的有效技术,这些先验知识可以有效地用于诊断将阻碍未来学习的空白并为学习和辅导提出建议以填补空白。在本文中,我们提出了一种对先前学习进行预评估的机制,该机制基于对新的或适当的学习水平的建议。我们的方法基于多代理系统中代理之间的消息传递过程。我们已经使用基于Jason Agent Speak语言的原型并使用来自结构化查询语言(SQL)修订模块的学习资料对预评估技术进行了测试。

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