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R-MINI: An iterative approach for generating minimal rules from examples

机译:R-MINI:一种通过示例生成最小规则的迭代方法

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Generating classification rules or decision trees from examples has been a subject of intense study in the pattern recognition community, the statistics community, and the machine-learning community of the artificial intelligence area. We pursue a point of view that minimality of rules is important, perhaps above all other considerations (biases) that come into play in generating rules. We present a new minimal rule-generation algorithm called R-MINI (Rule-MINI) that is an adaptation of a well-established heuristic-switching-function-minimization technique, MINI. The main mechanism that reduces the number of rules is repeated application of generalization and specialization operations to the rule set while maintaining completeness and consistency. R-MINI results on some benchmark cases are also presented.
机译:从示例生成分类规则或决策树已成为人工智能领域的模式识别社区,统计社区和机器学习社区的研究重点。我们追求一种观点,即规则的最小化很重要,这可能比生成规则时要考虑的所有其他考虑因素(偏见)更为重要。我们提出了一种称为R-MINI(Rule-MINI)的新的最小规则生成算法,该算法是对行之有效的启发式交换功能最小化技术MINI的改编。减少规则数量的主要机制是在保持完整性和一致性的同时,将泛化和专业化操作重复应用于规则集。还介绍了一些基准案例的R-MINI结果。

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