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Erschienen in: Soft Computing 22/2020

13.05.2020 | Methodologies and Application

Tukey’s biweight estimation for uncertain regression model with imprecise observations

verfasst von: Dan Chen

Erschienen in: Soft Computing | Ausgabe 22/2020

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Abstract

The purpose of regression analysis is to study how a response variable has a relation to a vector of explanatory variables. Traditionally, statisticians assume that the observation data are precise, and we can get some exact values. However, in many cases, the imprecise observation data are available. We assume that these data are uncertain variables in the sense of uncertainty theory. In this paper, the Tukey biweight or bisquare family of loss functions is applied to estimate unknown parameters satisfying the uncertain regression model. First, the Tukey biweight estimations of three types of regression models are given, namely linear, asymptotic and Michaelis–Menten. Then an empirical study is presented to verify the feasibility of this approach. Finally, the effectiveness of this method in weakening the outliers influence is shown by the comparative analysis.

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Metadaten
Titel
Tukey’s biweight estimation for uncertain regression model with imprecise observations
verfasst von
Dan Chen
Publikationsdatum
13.05.2020
Verlag
Springer Berlin Heidelberg
Erschienen in
Soft Computing / Ausgabe 22/2020
Print ISSN: 1432-7643
Elektronische ISSN: 1433-7479
DOI
https://doi.org/10.1007/s00500-020-04973-x

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