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Hierarchically Organized Skew-Tolerant Histograms for Geographic Data Objects

机译:用于地理数据对象的分层组织的歪斜直方图

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Histograms have been widely used for fast estimation of query result sizes in query optimization. In this paper, we propose a new histogram method, called the Skew-Tolerant Histogram (STHistogram) for two or three dimensional geographic data objects that are used in many real-world applications in practice. The proposed method provides a significantly enhanced accuracy in a robust manner even for the data set that has a highly skewed distribution. Our method detects hotspots present in various parts of a data set and exploits them in organizing histogram buckets. For this purpose, we first define the concept of a hotspot, and provide an algorithm that efficiently extracts hotspots from the given data set. Then, we present our histogram construction method that utilizes hotspot information. We also describe how to estimate query result sizes by using the proposed histogram. We show through extensive performance experiments that the proposed method provides better performance than other existing methods.
机译:直方图已广泛用于查询优化中查询结果大小的快速估计。在本文中,我们提出了一种新的直方图方法,称为在实践中许多实际应用中使用的两个或三维地理数据对象的偏移宽容直方图(STHIMATOG)。即使对于具有高度倾斜分布的数据集,所提出的方法也以稳健的方式提供显着增强的精度。我们的方法检测数据集的各个部分中存在的热点,并在组织直方图存储器中利用它们。为此目的,我们首先定义热点的概念,并提供一种有效地从给定数据集中提取热点的算法。然后,我们介绍了使用热点信息的直方图构造方法。我们还通过使用所提出的直方图来介绍如何估算查询结果大小。我们通过广泛的性能实验表明,所提出的方法提供比其他现有方法更好的性能。

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