Empirical likelihood inference for monotone index model

被引:0
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作者
Taisuke Otsu
Keisuke Takahata
Mengshan Xu
机构
[1] London School of Economics,Department of Economics
[2] Keio Economic Observatory (KEO),Faculty of Economics
[3] Keio University,Department of Economics
[4] University of Mannheim,undefined
关键词
Monotone index model; Empirical likelihood; Isotonic regression;
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摘要
This paper proposes an empirical likelihood inference method for monotone index models. We construct the empirical likelihood function based on a modified score function developed by Balabdaoui et al. (Scand J Stat 46:517–544, 2019), where the monotone link function is estimated by isotonic regression. It is shown that the empirical likelihood ratio statistic converges to a weighted chi-squared distribution. We suggest inference procedures based on an adjusted empirical likelihood statistic that is asymptotically pivotal, and a bootstrap calibration with recentering. A simulation study illustrates usefulness of the proposed inference methods.
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页码:103 / 114
页数:11
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