Knowledge acquisition for classification systems

T. Miura, I. Shioya
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引用次数: 9

Abstract

We propose a new method to mine a type scheme semi-automatically from an initial database scheme and the instances. Our data model assumes that one entity may have more than one type and classification (or type scheme). It might be appropriate when each entity is classified into at most k (least general) classes with respect to the ISA hierarchy, to keep database processing efficient. Our method differs from others in evolving ISA hierarchy by introducing a semantical metric. We propose a sophisticated algorithm to simplify, evolve and generate type schemes.
分类系统的知识获取
提出了一种从初始数据库模式和实例中半自动挖掘类型模式的新方法。我们的数据模型假设一个实体可能有多个类型和分类(或类型方案)。当每个实体相对于ISA层次结构被划分为最多k个(最少一般)类时,这可能是合适的,以保持数据库处理的效率。我们的方法不同于其他方法,它通过引入语义度量来发展ISA层次结构。我们提出了一种复杂的算法来简化、进化和生成类型方案。
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