通过 Covid-19 数据分析评估带测量误差的偏线性混合模型中修正核岭预测器的性能

Özge Kuran, Seçil Yalaz
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引用次数: 0

摘要

本文介绍了部分线性混合测量误差模型中多重共线性情况下的新预测器。为了实现这一目标,我们参考了一些初步信息,并利用这些信息提出了部分线性混合测量误差模型中的修正核岭预测器。此外,我们还对新描述的修正核脊预测器与之前文献中描述的部分线性混合测量误差模型预测器进行了均方误差比较。最后,文章展示了真实数据分析和模拟研究,以阐明我们的理论发现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ölçüm Hatalı Kısmi Lineer Karma Modellerde Modified Kernel Ridge Öntahmin Edicilerin Covid-19 Veri Analizi Yoluyla Performans Değerlendirmesi
In this article we describe new predictors under multicollinearity situation in the partially linear mixed measurement error models. In order to achieve this aim, we refer to some preliminary information and use it in order to suggest the modified Kernel ridge predictors in the partially linear mixed measurement error models. In addition, we also attain some mean square error comparisons between our new described modified Kernel ridge predictors and predictors previously described in literature for the partially linear mixed measurement error model. In conclusion, the article showcases real data analysis and a simulation study to illusrate our theoretical findings.
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