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作者:

Rong, Yaohua (Rong, Yaohua.) | Zhao, Sihai Dave (Zhao, Sihai Dave.) | Zhu, Ji (Zhu, Ji.) | Yuan, Wei (Yuan, Wei.) | Cheng, Weihu (Cheng, Weihu.) (学者:程维虎) | Li, Yi (Li, Yi.)

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摘要:

A key step in pharmacogenomic studies is the development of accurate prediction models for drug response based on individuals' genomic information. Recent interest has centered on semiparametric models based on kernel machine regression, which can flexibly model the complex relationships between gene expression and drug response. However, performance suffers if irrelevant covariates are unknowingly included when training the model. We propose a new semiparametric regression procedure, based on a novel penalized garrotized kernel machine (PGKM), which can better adapt to the presence of irrelevant covariates while still allowing for a complex nonlinear model and gene-gene interactions. We study the performance of our approach in simulations and in a pharmacogenomic study of the renal carcinoma drug temsirolimus. Our method predicts plasma concentration of temsirolimus as well as standard kernel machine regression when no irrelevant covariates are included in training, but has much higher prediction accuracy when the truly important covariates are not known in advance.

关键词:

Model selection Semiparametric regression Kernel machine

作者机构:

  • [ 1 ] [Rong, Yaohua]Beijing Univ Technol, Coll Appl Sci, 100 Pingleyuan, Beijing, Peoples R China
  • [ 2 ] [Cheng, Weihu]Beijing Univ Technol, Coll Appl Sci, 100 Pingleyuan, Beijing, Peoples R China
  • [ 3 ] [Zhao, Sihai Dave]Univ Illinois, Dept Stat, Champaign, IL USA
  • [ 4 ] [Zhu, Ji]Univ Michigan, Dept Stat, Ann Arbor, MI 48109 USA
  • [ 5 ] [Yuan, Wei]Renmin Univ China, Sch Stat, Beijing, Peoples R China
  • [ 6 ] [Li, Yi]West China Hosp Chengdu, Chengdu, Sichuan, Peoples R China
  • [ 7 ] [Li, Yi]Univ Michigan, Dept Biostat, Ann Arbor, MI 48109 USA

通讯作者信息:

  • [Li, Yi]West China Hosp Chengdu, Chengdu, Sichuan, Peoples R China;;[Li, Yi]Univ Michigan, Dept Biostat, Ann Arbor, MI 48109 USA

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来源 :

STATISTICS AND ITS INTERFACE

ISSN: 1938-7989

年份: 2018

期: 4

卷: 11

页码: 573-580

0 . 8 0 0

JCR@2022

ESI学科: MATHEMATICS;

ESI高被引阀值:63

JCR分区:4

被引次数:

WoS核心集被引频次: 8

SCOPUS被引频次: 8

ESI高被引论文在榜: 0 展开所有

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