一个RBR-CBR课程咨询专家系统模型

Emebo Onyeka, Daramola Olawande, Ayo K. Charles
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引用次数: 6

摘要

学术学生辅导是一项庞大的任务,对学术顾问的时间、情感和精神资源都有很高的要求。这也是一项至关重要且非常微妙的任务,必须以无可挑剔的专业知识和精确度来处理,否则可能会因为糟糕的建议而危及预期的学生受益人的未来。学生学术咨询的一个组成部分是课程注册,学生根据他们目前的学术地位决定在特定学期选择课程。本文介绍了基于规则推理(RBR)和基于案例推理(CBR)的混合课程咨询专家系统(CAES)的设计、实现和试验评估。RBR组件是使用JESS实现的。试验结果表明,该系统具有较高的性能/用户满意度评级,从样本专家群体进行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CAES: A model of an RBR-CBR course advisory expert system
Academic student advising is a gargantuan task that places heavy demand on the time, emotions and mental resources of the academic advisor. It is also a mission critical and very delicate task that must be handled with impeccable expertise and precision else the future of the intended student beneficiary may be jeopardized due to poor advising. One integral aspect of student academic advising is course registration, where students make decisions on the choice of courses to take in specific semesters based on their current academic standing. In this paper, we give the description of the design, implementation and trial evaluation of the Course Advisory Expert System (CAES) which is a hybrid of a rule based reasoning (RBR) and case based reasoning (CBR). The RBR component was implemented using JESS. The result of the trial experiment revealed that the system has high performance/user satisfaction rating from the sample expert population conducted.
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