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首页> 外文期刊>IEEE Transactions on Knowledge and Data Engineering >Attribute-level neighbor hierarchy construction using evolved pattern-based knowledge induction
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Attribute-level neighbor hierarchy construction using evolved pattern-based knowledge induction

机译:使用基于进化模式的知识归纳法构建属性级邻居层次结构

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摘要

Neighbor knowledge construction is the foundation for the development of cooperative query answering systems capable of searching for close match or approximate answers when exact match answers are not available. This paper presents a technique for developing neighbor hierarchies at the attribute level. The proposed technique is called the evolved pattern-based knowledge induction (ePKI) technique and allows construction of neighbor hierarchies for nonunique attributes based upon confidences, popularities, and clustering correlations of inferential relationships among attribute values. The technique is applicable for both categorical and numerical (discrete and continuous) attribute values. Attribute value neighbor hierarchies generated by the ePKI technique allow a cooperative query answering system to search for approximate answers by relaxing each individual query condition separately. Consequently, users can search for approximate answers even when the exact match answers do not exist in the database (i.e., searching for existing similar parts as part of the implementation of the concepts of rapid prototyping). Several experiments were conducted to assess the performance of the ePKI in constructing attribute-level neighbor hierarchies. Results indicate that the ePKI technique produces accurate neighbor hierarchies when strong inferential relationships appear among data.
机译:邻居知识的构建是开发协作查询应答系统的基础,该系统可以在没有精确匹配答案时搜索紧密匹配或近似答案。本文提出了一种在属性级别开发邻居层次结构的技术。所提出的技术称为基于进化模式的知识归纳(ePKI)技术,并允许基于置信度,流行度以及属性值之间的推论关系的聚类相关性来构造非唯一属性的邻居层次结构。该技术适用于分类和数值(离散和连续)属性值。由ePKI技术生成的属性值邻居层次结构允许协作查询应答系统通过分别放松每个单独的查询条件来搜索近似答案。因此,即使数据库中不存在精确匹配的答案,用户也可以搜索近似答案(即,作为快速原型概念实现的一部分,搜索现有的相似部分)。进行了一些实验,以评估ePKI在构建属性级邻居层次结构中的性能。结果表明,当数据之间出现强推论关系时,ePKI技术会产生准确的邻居层次结构。

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