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A Multivariate Test for Three-Factor Interaction in 3-Way Contingency Table under the Multiplicative Model
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作者 Njoku O. Ama 《Open Journal of Statistics》 2014年第8期586-596,共11页
Two test statistics that have been commonly used in analysing interactions in contingency table are the Pearson’s Chi-square statistic, χ2, and likelihood ratio test statistic, G2. Both test statistics, in tables wi... Two test statistics that have been commonly used in analysing interactions in contingency table are the Pearson’s Chi-square statistic, χ2, and likelihood ratio test statistic, G2. Both test statistics, in tables with sufficiently large sample size, have an asymptotic chi-square distribution with degrees of freedom (df) equal to the number of free parameters in the saturated model. For example under the hypothesis of independence of the row and column conditioned on the layer in an I × J × K contingency table, the df is K(I –1)(J– 1). These test statistics, in large sized tables, will have less power since they have large degrees of freedom. This paper proposes a product effect model, which combines the advantages of the multiplicative models over the additive, for analysing the interaction between the row and column of the 3-way table conditioned on the layer. The derived statistics is shown to be asymptotically chi-square with a small degree of freedom, K?– 1, for the I × J × K contingency table. The performance of the developed statistic is compared with the Pearson’s chi-square statistic and the likelihood ratio statistic test using an illustrative example. The results show that the product effect test can detect interaction even when some of the main effects are not significant and can perform better than the other competitors having smaller degree of freedom in large sized tables. 展开更多
关键词 contingency tableS Product Effect Models interaction
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高维列联表的交互作用 被引量:4
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作者 许汝福 张蔚 尹全焕 《数理医药学杂志》 1996年第1期62-64,共3页
本文用x^2检验分析高维列联表各因素间的交互作用,并举例说明交互作用的意义。
关键词 医用数理统计 高维列联表 交互作用 X^2检验
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对数线性模型在临床试验资料分析中的应用
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作者 马林茂 王骏 《中国临床药理学杂志》 CAS CSCD 北大核心 2011年第3期216-217,共2页
目的选择适合药物临床试验列联表资料分析方法,为药物的疗效、安全性和不良反应等提供科学依据。方法利用对数线性模型,讨论多维列联表分析的优势。结果与结论临床试验中经常接触到多维列联表的数据,对这类数据需采用特殊的方法进行分... 目的选择适合药物临床试验列联表资料分析方法,为药物的疗效、安全性和不良反应等提供科学依据。方法利用对数线性模型,讨论多维列联表分析的优势。结果与结论临床试验中经常接触到多维列联表的数据,对这类数据需采用特殊的方法进行分析处理。 展开更多
关键词 对数线性模型 主效应 交互作用 列联表
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