Monotone Nonparametric Regression and Confidence Intervals
Several variations of monotone nonparametric regression have been developed over the past 30 years. One approach is to first apply nonparametric regression to data and then monotone smooth the initial estimates to "iron out" violations to the assumed order. Here, such estimators are consid...
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Published in | Communications in statistics. Simulation and computation Vol. 39; no. 4; pp. 828 - 845 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
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Taylor & Francis Group
01.04.2010
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ISSN | 0361-0918 1532-4141 |
DOI | 10.1080/03610911003650367 |
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Abstract | Several variations of monotone nonparametric regression have been developed over the past 30 years. One approach is to first apply nonparametric regression to data and then monotone smooth the initial estimates to "iron out" violations to the assumed order. Here, such estimators are considered, where local polynomial regression is first used, followed by either least squares isotonic regression or a monotone method using simple averages. The primary focus of this work is to evaluate different types of confidence intervals for these monotone nonparametric regression estimators through Monte Carlo simulation. Most of the confidence intervals use bootstrap or jackknife procedures. Estimation of a response variable as a function of two continuous predictor variables is considered, where the estimation is performed at the observed values of the predictors (instead of on a grid). The methods are then applied to data involving subjects that worked at plants that use beryllium metal who have developed chronic beryllium disease. |
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AbstractList | Several variations of monotone nonparametric regression have been developed over the past 30 years. One approach is to first apply nonparametric regression to data and then monotone smooth the initial estimates to "iron out" violations to the assumed order. Here, such estimators are considered, where local polynomial regression is first used, followed by either least squares isotonic regression or a monotone method using simple averages. The primary focus of this work is to evaluate different types of confidence intervals for these monotone nonparametric regression estimators through Monte Carlo simulation. Most of the confidence intervals use bootstrap or jackknife procedures. Estimation of a response variable as a function of two continuous predictor variables is considered, where the estimation is performed at the observed values of the predictors (instead of on a grid). The methods are then applied to data involving subjects that worked at plants that use beryllium metal who have developed chronic beryllium disease. |
Author | Swihart, Bruce J. Zhang, Yu Strand, Matthew |
Author_xml | – sequence: 1 givenname: Matthew surname: Strand fullname: Strand, Matthew email: strandm@njc.org organization: Department of Biostatistics & Informatics, Colorado School of Public Health , University of Colorado Denver – sequence: 2 givenname: Yu surname: Zhang fullname: Zhang, Yu organization: Department of Biostatistics & Informatics, Colorado School of Public Health , University of Colorado Denver – sequence: 3 givenname: Bruce J. surname: Swihart fullname: Swihart, Bruce J. organization: Department of Biostatistics, Johns Hopkins School of Public Health |
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Cites_doi | 10.1016/S0167-7152(96)00037-5 10.1007/BF03021586 10.1007/0-387-30065-1_3 10.1152/jappl.1971.31.5.717 10.1111/1467-9868.00125 10.1081/SAC-120013119 10.1214/aos/1176325358 10.1214/aos/1176345866 10.1007/978-1-4612-4384-7 10.1002/ajim.20736 10.1214/aos/1009210683 10.1152/japplphysiol.00512.2006 10.2307/1267550 10.1007/978-1-4612-0795-5 10.4135/9781412985154 10.2307/2291202 10.1214/aos/1176348117 10.1002/cjs.5550340401 10.1007/978-1-4899-4541-9 10.1214/aos/1176350832 |
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Keywords | 62G05 62G08 Statistical distribution 62G09 Non parametric estimation Stochastic method Least squares method Jackknife Bootstrap Jackknife method Approximation theory Local polynomial regression Monte Carlo method Grid pattern Chronic disease Smooth estimate Nonparametric regression Statistical estimation Two variables function Confidence interval Statistical method Response function Numerical analysis Isotonic regression Numerical simulation Resampling method Polynomial regression 62G15 |
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SubjectTerms | Beryllium Bootstrap Computer simulation Confidence intervals Distribution theory Estimators Exact sciences and technology Iron and steel plants Isotonic regression Jackknife Local polynomial regression Mathematical analysis Mathematical models Mathematics Monte Carlo methods Monte Carlo simulation Nonparametric inference Numerical analysis Numerical analysis. Scientific computation Numerical methods in probability and statistics Parametric inference Probability and statistics Regression Sciences and techniques of general use Statistics Studies |
Title | Monotone Nonparametric Regression and Confidence Intervals |
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