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列联表的极大似然典型分析

Canonical Analysis of Contingency Tables by Maximum Likelihood

Journal of the American Statistical Association · 1986
被引 21
ABS 4

中文导读

研究了用极大似然法对列联表进行典型分析,通过限制典型参数得到简洁的关联描述,并给出置信区间和卡方检验,适用于判断潜在类别分析或典型得分模式。

Abstract

Abstract Canonical analysis has often been employed instead of log-linear models to analyze the relationship of two polytomous random variables; however, until the last few years, analysis has been informal. In this article, models are examined that place nontrivial restrictions on the values of the canonical parameters so that a parsimonious description of association is obtained. Maximum likelihood is used to obtain parameter estimates for these restricted models. Approximate confidence intervals are derived for parameters, and chi-squared tests are used to check adequacy of models. The resulting models may be used to determine the appropriateness of latent-class analysis or to determine whether a set of canonical scores has specified patterns. Results are illustrated through analysis of two tables previously analyzed in the statistical literature. Comparisons are made with alternate methods of analysis based on a log-linear parameterization of cell probabilities. It is shown that canonical analysis, which uses interpretations based on regression and correlation, is an alternative to log-linear parameterizations interpreted in terms of cross-product ratios.

列联表典型相关对数线性模型极大似然估计统计学