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Difference Detection Between Two Contrast Sets

机译:两个对比度集之间的差异检测

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摘要

Mining group differences is useful in many applications, such as medical research, social network analysis and link discovery. The differences between groups can be measured from either statistical or data mining perspective. In this paper, we propose an empirical likelihood (EL) based strategy of building confidence intervals for the mean and distribution differences between two contrasting groups. In our approach we take into account the structure (semi-parametric) of groups, and experimentally evaluate the proposed approach using both simulated and real-world data. The results demonstrate that our approach is effective in building confidence intervals for group differences such as mean and distribution function.
机译:采矿组差异在许多应用中有用,例如医学研究,社交网络分析和链接发现。可以从统计或数据挖掘角度来衡量组之间的差异。在本文中,我们提出了基于经验的似况(EL)的建筑置信区间的策略,用于两个对比组的平均值和分布差异。在我们的方法中,我们考虑了组的结构(半参数),并通过模拟和现实世界数据进行了实验评估所提出的方法。结果表明,我们的方法在构建群体差异的置信区间有效,例如平均值和分配功能。

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