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A generalized case competence model for casebase maintenance

机译:案例库维护的通用案例能力模型

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摘要

A competence guided casebase maintenance algorithm retains a case in the casebase if it is useful to solve many problems and ensures that the casebase is highly competent. In this paper, a generalized case competence model is proposed for casebase maintenance which addresses compositional adaptation of which single case adaptation is a special case. For this model, a measure called retention score is proposed to estimate the retention quality of a case. A revised algorithm is proposed to estimate the competent subset of the casebase using retention score. We also propose a weighted retention score measure which considers the problem solving ability of cases that are involved in arriving at a solution. The effectiveness of the competent subset obtained from the proposed model is tested using synthetic classification dataset and housing dataset. This model is also applied in a tutoring application and analyzed the competent subset of concepts in tutoring resources. Empirical results show that the proposed model is effective and overcomes the limitation of footprint based competence model in compositional adaptation applications.
机译:能力指导的案例库维护算法,如果对解决许多问题有用,并确保案例库具有很高的能力,则可以将案例保留在案例库中。在本文中,为案例库维护提出了一个通用的案例能力模型,该模型解决了组合案例的适应性,其中单个案例的适应是特例。对于此模型,提出了一种称为保留分数的方法来估计案件的保留质量。提出了一种修订算法,以使用保留分数来估算案例库的主管子集。我们还提出了一种加权保留分数测度,该测度考虑了涉及解决方案的案例的问题解决能力。使用综合分类数据集和住房数据集测试了从提出的模型中获得的胜任子集的有效性。此模型也应用于补习应用程序,并分析了补习资源中概念的有效子集。实验结果表明,所提出的模型是有效的,并且克服了在合成适应应用中基于足迹的能力模型的局限性。

著录项

  • 来源
    《AI communications》 |2017年第4期|295-309|共15页
  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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