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Mining competent case bases for case-based reasoning

机译:挖掘胜任的案例库以进行基于案例的推理

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Case-based reasoning relies heavily on the availability of a highly competent case base to make high-quality decisions. However, good case bases are difficult to come by. In this paper, we present a novel algorithm for automatically mining a high-quality case base from a raw case set that can preserve and sometimes even improve the competence of case-based reasoning. In this paper, we analyze two major problems in previous case-mining algorithms. The first problem is caused by noisy cases such that the nearest neighbor cases of a problem may not provide correct solutions. The second problem is caused by uneven case distribution, such that similar problems may have dissimilar solutions. To solve these problems, we develop a theoretical framework for the error bound in case-based reasoning, and propose a novel case-base mining algorithm guided by the theoretical results that returns a high-quality case base from raw data efficiently. We support our theory and algorithm with extensive empirical evaluation using different benchmark data sets.
机译:基于案例的推理在很大程度上依赖于能力强大的案例库来做出高质量的决策。但是,很难找到好的案例依据。在本文中,我们提出了一种新颖的算法,可以自动从原始案例集中挖掘出高质量的案例库,该算法可以保留甚至提高基于案例的推理能力。在本文中,我们分析了以前的案例挖掘算法中的两个主要问题。第一个问题是由嘈杂的情况引起的,因此问题的最近邻居可能无法提供正确的解决方案。第二个问题是由案件分配不均引起的,因此类似的问题可能具有不同的解决方案。为了解决这些问题,我们为基于案例的推理中的错误界限开发了一个理论框架,并在理论结果的指导下提出了一种新颖的基于案例的挖掘算法,该算法可以有效地从原始数据中返回高质量的案例库。我们使用不同的基准数据集通过广泛的经验评估来支持我们的理论和算法。

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