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Retrieving Accurate Estimates to OLAP Queries over Uncertain and Imprecise Multidimensional Data Streams

机译:通过不确定和不精确的多维数据流检索精确估计OLAP查询

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In this paper, we introduce a novel framework for estimating OLAP queries over uncertain and imprecise multidimensional data streams, along with three relevant research contributions: (i) a probabilistic data stream model, which describes both precise and imprecise multidimensional data stream readings in terms of nice confidence-interval-based Probability Distribution Functions (PDF); (ii) a possible-world semantics for uncertain and imprecise multidimensional data streams, which is based on an innovative data-driven approach that exploits "natural" features of OLAP data, such as the presence of clusters and high correlations; (iii) an innovative approach for providing theoretically-founded estimates to OLAP queries over uncertain and imprecise multidimensional data streams that exploits the well-recognized probabilistic estimators theory.
机译:在本文中,我们介绍了一种用于估计OLAP查询的新颖框架,以及三个相关的研究贡献:(i)概率数据流模型,其描述了精确和不精确的多维数据流读数基于置信区间的良好置信概率分布功能(PDF); (ii)用于不确定和不精确的多维数据流的可能世界语义,基于创新的数据驱动方法,该方法利用OLAP数据的“自然”特征,例如群集的存在和高相关; (iii)通过利用公认的概率估计理论,提供理论上创立的估计的理论上创立的估计的创新方法,以利用公认的概率估计理论的不确定和不精确的多维数据流。

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