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Effective Pruning for the Discovery of Conditional Functional Dependencies

机译:发现条件功能依赖项的有效修剪

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摘要

Conditional functional dependencies (CFDs) have been proposed as a new type of semantic rules extended from traditional functional dependencies. They have shown great potential for detecting and repairing inconsistent data. Constant CFDs are 100% confidence association rules. The theoretical search space for the minimal set of CFDs is the set of minimal generators and their closures in data. This search space has been used in the currently most efficient constant CFD discovery algorithm. In this paper, we propose pruning criteria to further prune the theoretic search space, and design a fast algorithm for constant CFD discovery. We evaluate the proposed algorithm on a number of media to large real-world data sets. The proposed algorithm is faster than the currently most efficient constant CFD discovery algorithm, and has linear time performance in the size of a data set.
机译:已提出条件功能依赖关系(CFD)作为从传统功能依赖关系扩展的新型语义规则。它们显示出了检测和修复不一致数据的巨大潜力。恒定差价合约是100%置信度关联规则。最小CFD集合的理论搜索空间是最小生成器及其数据闭包的集合。该搜索空间已用于当前最有效的恒定CFD发现算法中。在本文中,我们提出了修剪标准以进一步修剪理论搜索空间,并设计了一种用于持续CFD发现的快速算法。我们在大量媒体上评估所提出的算法,以获取大型实际数据集。所提出的算法比当前最有效的恒定CFD发现算法要快,并且在数据集的大小上具有线性时间性能。

著录项

  • 来源
    《The Computer journal》 |2013年第3期|378-392|共15页
  • 作者单位

    School of Computer and Information Science, University of South Australia, Adelaide, Australia;

    School of Computer and Information Science, University of South Australia, Adelaide, Australia;

    Department of Computer Science and HUT, University of Helsinki, Helsinki, Finland;

    School of Information Systems, University of Southern Queensland, Toowoomba, QLD, Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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