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Applying Clustering Analysis on Grouping Similar OLAP Reports

机译:应用群集分析分组类似的OLAP报告

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摘要

On Line Analysis Processing (OLAP) is a common Solution that modern enterprises use to generate, monitor, share, and administrate their analysis reports. When daily, weekly, and/or monthly reports are generated or published by the OLAP operators, the report readers can only rely on their smart eyes to find out hidden rules, similar reports, or trend inside the potentially huge amount of reports. Data mining is a well-developed field for finding hidden rules inside the data itself. However, there is few techniques focus on finding hidden rules, similarity, or trend using OLAP reports as the unit of analysis. In this paper, we explore how to use clustering analysis on OLAP reports in order to automatically and effectively find the grouping knowledge of OLAP reports. We also address the appropriate presentation of this grouping knowledge to OLAP users.
机译:在线分析处理(OLAP)是现代企业用于生成,监控,共享和管理分析报告的常见解决方案。每天,每周和/或每月报告都由OLAP运营商生成或发布时,报告读者只能依靠他们的智能眼睛来查找隐藏的规则,类似报告或潜在巨额报告中的趋势。数据挖掘是一个发达的字段,用于在数据本身内找到隐藏的规则。但是,很少有技术侧重于发现使用OLAP报告作为分析单位的隐藏规则,相似性或趋势。在本文中,我们探索如何在OLAP报告上使用聚类分析,以便自动且有效地找到OLAP报告的分组知识。我们还将本分组知识的适当呈现给OLAP用户。

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