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An Analysis of Probabilistic Approximations for Rule Induction from Incomplete Data Sets

机译:来自不完整数据集的规则归纳的概率近似分析

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摘要

The main objective of our research was to test whether the probabilistic approximations should be used in rule induction from incomplete data. For our research we designed experiments using six standard data sets. Four of the data sets were incomplete to begin with and two of the data sets had missing attribute values that were randomly inserted. In the six data sets, we used two interpretations of missing attribute values: lost values and "do not care" conditions. In addition we used three definitions of approximations: singleton, subset and concept. Among 36 combinations of a data set, type of missing attribute values and type of approximation, for five combinations the error rate (the result of ten-fold cross validation) was smaller than for ordinary (lower and upper) approximations; for other four combinations, the error rate was larger than for ordinary approximations. For the remaining 27 combinations, the difference between these error rates was not statistically significant.
机译:我们研究的主要目的是测试是否应使用概率近似从不完整的数据进行规则归纳。对于我们的研究,我们使用六个标准数据集设计了实验。最初有四个数据集不完整,两个数据集缺少随机插入的属性值。在这六个数据集中,我们使用了两种缺失属性值的解释:缺失值和“无关”条件。此外,我们使用了三种近似值定义:单例,子集和概念。在数据集的36个组合中,缺少属性值的类型和近似的类型中,对于五个组合,错误率(十倍交叉验证的结果)小于常规的近似值(较低和较高)。对于其他四个组合,错误率大于普通近似值。对于其余的27种组合,这些错误率之间的差异在统计上并不显着。

著录项

  • 来源
    《Fundamenta Informaticae》 |2014年第3期|365-379|共15页
  • 作者单位

    Department of Electrical Engineering and Computer Science University of Kansas Lawrence, KS 66045, USA;

    Department of Electrical Engineering and Computer Science, University of Kansas, 3014 Eaton Hall, 1520 W. 15th St., # 2001, Lawrence, KS 66045-7621, USA, Institute of Computer Science, Polish Academy of Sciences, 01 -237 Warsaw, Poland;

    Department of Expert Systems and Artificial Intelligence, University of Information Technology and Management, 35-225 Rzeszow, Poland;

  • 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
  • 关键词

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