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A LAZY ALGORITHM FOR DECISION TREE INDUCTION BASED ON IMPORTANCE OF ATTRIBUTES

机译:一种基于属性重要性的决策树诱导的懒惰算法

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This paper applies lazy idea to fuzzy decision tree induction. A new algorithm is proposed in this paper based on important of attributes. This algorithm, which does not generate a decision tree for all training examples, only determines a specified path for each test case. Obviously the algorithm has reduced the computational effort of training but increase the complexity of testing. We experimentally find that the proposed algorithm is superior to the traditional one oh robustness.
机译:本文适用于模糊决策树诱导的懒惰想法。本文在本文中提出了一种新的算法,基于属性的重要性。该算法不生成所有训练示例的决策树,仅确定每个测试用例的指定路径。显然,该算法降低了培训的计算工作,但增加了测试的复杂性。我们通过实验发现所提出的算法优于传统的一个哦鲁棒性。

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