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A Procedure to Compute Prototypes for Data Mining in Non-Structured Domains

机译:在非结构化域中计算数据挖掘原型的过程

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This paper describes a technique for associating a set of symbols with an event in the context of knowledge discovery in database or data mining. The set of symbols is related to the keywords in a database which is used as an implicit knowledge source. The aim of this approach is to discover he significant keyword groups which best represent the event. A significant contribution of this work is a procedure which obtains the representative prototype of a group of symbolic data. It can be used for both, unsupervised learning to describe classes, and supervised learning to compute prototypes. The procedure involves defining an objective function and the subsequent hypothesis-exploring system and obtaining an advantageous procedure regarding computational costs.
机译:本文介绍了一种在数据库或数据挖掘中的知识发现环境中将一组符号与事件相关联的技术。符号集与用作隐式知识源的数据库中的关键字相关。这种方法的目的是发现最能代表事件的重要关键词组。这项工作的重要贡献是获得了一组符号数据的代表性原型的过程。它既可以用于描述类的无监督学习,也可以用于计算原型的有监督学习。该过程涉及定义目标函数和随后的假设探索系统,并获得有关计算成本的有利过程。

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