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Testing stochastic orders in tails of contingency tables

机译:测试列联表尾部的随机订单

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摘要

Testing for the difference in the strength of bivariate association in two independent contingency tables is an important issue that finds applications in various disciplines. Currently, many of the commonly used tests are based on single-index measures of association. More specifically, one obtains single-index measurements of association from two tables and compares them based on asymptotic theory. Although they are usually easy to understand and use, often much of the information contained in the data is lost with single-index measures. Accordingly, they fail to fully capture the association in the data. To remedy this shortcoming, we introduce a new summary statistic measuring various types of association in a contingency table. Based on this new summary statistic, we propose a likelihood ratio test comparing the strength of association in two independent contingency tables. The proposed test examines the stochastic order between summary statistics. We derive its asymptotic null distribution and demonstrate that the least favorable distributions are chi-bar distributions. We numerically compare the power of the proposed test to that of the tests based on single-index measures. Finally, we provide two examples illustrating the new summary statistics and the related tests.
机译:在两个独立的列联表中测试双变量关联强度的差异是一个重要的问题,可在各种学科中找到应用。当前,许多常用的测试都基于关联的单指标度量。更具体地说,人们从两张表中获得关联的单指标测量结果,并根据渐近理论进行比较。尽管它们通常易于理解和使用,但单索引度量常常会丢失数据中包含的许多信息。因此,它们无法完全捕获数据中的关联。为了弥补这一缺点,我们在列联表中引入了一种新的汇总统计量,用于测量各种类型的关联。基于此新的摘要统计数据,我们提出了一种似然比检验,比较了两个独立的列联表中的关联强度。提议的测试检查摘要统计量之间的随机顺序。我们推导其渐近零分布,并证明最不利的分布是卡巴分布。我们在数值上比较了所提出的测试与基于单指标测度的测试的能力。最后,我们提供两个示例,说明新的摘要统计信息和相关测试。

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