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    請使用永久網址來引用或連結此文件: http://ir.lib.ncu.edu.tw/handle/987654321/51083


    題名: Deletion diagnostics for generalized linear models using the adjusted Poisson likelihood function
    作者: Chien,LC;Tsou,TS
    貢獻者: 系統生物與生物資訊研究所
    關鍵詞: REGRESSION
    日期: 2011
    上傳時間: 2012-03-27 18:20:55 (UTC+8)
    出版者: 國立中央大學
    摘要: In this article, we propose two novel diagnostic measures for the deletion of influential observations for regression parameters in the setting of generalized linear models. The proposed diagnostic methods are capable for detecting the influential observations under model misspecification, as long as the true underlying distributions have finite second moments. More specifically, it is demonstrated that the Poisson likelihood function can be properly adjusted to become asymptotically valid for practically all underlying discrete distributions. The adjusted Poisson regression model that achieves the robustness property is presented. Simulation studies and an illustration are performed to demonstrate the efficacy of the two novel diagnostic procedures. (C) 2010 Elsevier B.V. All rights reserved.
    關聯: JOURNAL OF STATISTICAL PLANNING AND INFERENCE
    顯示於類別:[系統生物與生物資訊研究所] 期刊論文

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