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A Robust Likelihood Approach to Inference about the Difference between Two Multinomial Distributions in Paired Designs

  • 2017-07-17 (Mon.), 10:30 AM
  • 中研院-統計所 2F 交誼廳
  • 茶 會:上午10:10統計所二樓交誼廳
  • 鄒 宗 山 教授
  • 國立中央大學 統計研究所

Abstract

Pairing serves as a way of lessening hetero geneity but pays the price of introducing more parameters to the model. This complicates the probability structure and makes inference more intricate. We employ the simpler structure of the parallel design to develop a robust score statistic for testing the equality of two multinomial distributions in paired designs. This test incorporates the within-pair correlation in a data-driven manner without a full model specification. In the paired binary data scenario the robust score statistic becomes the McNemar’s test. We provide simulations and real data analysis to demonstrate the advantage of the robust procedure. ? Keywords: Paired design; Parallel design; Multinomial distribution; Robust score statistic; McNemar's test.

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