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Continuous probabilistic reverse skyline monitoring over uncertain data streams

机译:对不确定数据流进行连续概率反向天际线监视

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摘要

Reverse skyline is useful for supporting many applications, such as marketing decision, environmental monitoring. Since the uncertainty of data is inherent in many scenarios, there is a need for processing probabilistic reverse skyline queries. In this paper, we study the problem of efficiently processing these queries on uncertain data streams. We first show the formal definitions of reverse skyline probability and probabilistic reverse skyline. Then we propose a new algorithm called CPRS to maintain the most recent N uncertain data elements and to process continuous queries on them. CPRS is based on R-tree, and efficient pruning techniques, one of which is based on a new structure named Characteristic Rectangle, are incorporated into it to handling the extra computing complexity arising from the uncertainty of data. Finally, extensive experiments demonstrate that our techniques are very efficient in handling uncertain data streams.
机译:反向天际线可用于支持许多应用程序,例如营销决策,环境监控。由于数据的不确定性在许多情况下都是固有的,因此需要处理概率反向天际线查询。在本文中,我们研究了在不确定的数据流上有效处理这些查询的问题。我们首先显示反向天际线概率和概率反向天际线的正式定义。然后,我们提出了一种称为CPRS的新算法,该算法可维护最近的N个不确定数据元素并对其进行连续查询。 CPRS基于R树,高效的修剪技术(其中一种基于名为“特征矩形”的新结构)被并入其中,以处理由于数据不确定性而引起的额外计算复杂性。最后,大量实验证明我们的技术在处理不确定的数据流方面非常有效。

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