Laboratory assays used to evaluate biomarkers (biological markers) are often prohibitively expensive. As an efficient data collection mechanism to save on testing costs, pooling has become more commonly used in epidemiological research. Useful statistical methods have been proposed to relate pooled biomarker measurements to individual covariate information. However, most of these regression techniques have proceeded under parametric linear assumptions. To relax such assumptions, we propose a semiparametric approach that originates from the context of the single-index model. Unlike with traditional single-index methodologies, we face a challenge in that the observed data are biomarker measurements on pools rather than individual specimens. In this article, we propose a method that addresses this challenge. The asymptotic properties of our estimators are derived. We illustrate the finite sample performance of our estimators through simulation and by applying it to a diabetes data set and a chemokine data set.
机构:
Department of Mathematics, Shanghai Maritime University
School of Data Sciences,Zhejiang University of Finance and EconomicsDepartment of Mathematics, Shanghai Maritime University
XU Hongxia
FAN Guoliang
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机构:
School of Economics and Management, Shanghai Maritime UniversityDepartment of Mathematics, Shanghai Maritime University
FAN Guoliang
LI Jinchang
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机构:
School of Data Sciences, Zhejiang University of Finance and EconomicsDepartment of Mathematics, Shanghai Maritime University
机构:
East China Normal Univ, Acad Stat & Interdisciplinary Sci, KLATASDS MOE, Shanghai, Peoples R ChinaEast China Normal Univ, Acad Stat & Interdisciplinary Sci, KLATASDS MOE, Shanghai, Peoples R China
Zhang, Yingying
Wang, Huixia Judy
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机构:
George Washington Univ, Dept Stat, Washington, DC 20052 USAEast China Normal Univ, Acad Stat & Interdisciplinary Sci, KLATASDS MOE, Shanghai, Peoples R China
Wang, Huixia Judy
Zhu, Zhongyi
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机构:
Fudan Univ, Dept Stat, Shanghai, Peoples R ChinaEast China Normal Univ, Acad Stat & Interdisciplinary Sci, KLATASDS MOE, Shanghai, Peoples R China