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A new approach for the generation of fuzzy summaries based on fuzzy multidimensional databases

机译:基于模糊多维数据库的模糊摘要生成新方法

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Intelligent data analysis faces the problem of the huge amounts of data. More and more, database management systems are required to deal with this large repositories. In this framework, multidimensional databases are particularly adapted. They have emerged to support the OLAP framework. OLAP, standing for On Line Analytical Processing, is devoted to the fast analysis of multidimensional data. This model has been recently extended to the treatment of imperfect data and flexible queries. In this paper, we propose a new architecture based on fuzzy multidimensional databases to generate fuzzy summaries. This approach offers two main advantages. First, it provides a scalable framework due to the use of a database management system. Second, the introduction of fuzziness provides a theoretical framework to handle data from the real world and flexible queries. The chosen data mining tool is the generation of linguistic summaries. This kind of rules is a more understandable knowledge for the user than classical association rules. A user-friendly system is provided. This approach is compared to existing frameworks devoted to data analysis with association rules or fuzzy summaries. We insist on the fact that this model generalizes the classical one. It provides a framework to handle all classical crisp cases, since fuzzy set theory provides means to handle imperfect and classical data. Thus this method may be applied on classical data to generate fuzzy summaries.
机译:智能数据分析面临着海量数据的问题。越来越多地需要数据库管理系统来处理这种大型存储库。在此框架中,多维数据库特别适用。它们已经出现以支持OLAP框架。 OLAP代表在线分析处理,致力于多维数据的快速分析。该模型最近已扩展到不完美数据和灵活查询的处理。在本文中,我们提出了一种基于模糊多维数据库的新架构来生成模糊摘要。这种方法具有两个主要优点。首先,由于使用了数据库管理系统,它提供了可扩展的框架。其次,模糊性的引入提供了一个理论框架来处理来自现实世界和灵活查询的数据。选择的数据挖掘工具是语言摘要的生成。与经典关联规则相比,这种规则对用户而言是更易于理解的知识。提供了一种用户友好的系统。将该方法与致力于关联规则或模糊摘要的数据分析的现有框架进行了比较。我们坚持这一事实,即该模型可以概括经典模型。由于模糊集理论提供了处理不完美和经典数据的方法,因此它提供了处理所有经典明晰情况的框架。因此,该方法可以应用于经典数据以生成模糊摘要。

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