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Interactive Inductive Learning System

机译:互动式归纳学习系统

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Inductive learning system learns classification from training examples and uses induced rules for classifying new instances. If a decision cannot be inferred from system rule base, a default rule is usually applied. In the paper a new interactive approach is proposed where in uncertain conditions an interactive inductive learning system can ask for human decision and improve its knowledge base with the rule derived from this decision. Problems and solutions of incorporation of human-made decision into rule base and aspects of choosing between static and incremental learning algorithms are analyzed in context of the proposed approach. An interactive inductive learning system is proposed to assist in study course comparative analysis.
机译:归纳学习系统从训练示例中学习分类,并使用归纳规则对新实例进行分类。如果无法从系统规则库中推断出决策,通常会应用默认规则。在本文中,提出了一种新的交互式方法,其中在不确定的条件下,交互式归纳学习系统可以要求人为决策,并使用从该决策中得出的规则来改进其知识库。在此方法的背景下,分析了将人为决策纳入规则库以及在静态和增量学习算法之间进行选择的方面的问题和解决方案。提出了一种交互式归纳学习系统,以协助学习课程的比较分析。

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