JOURNAL ARTICLE

Least squares regression with errors in both variables: case studies

Elcio Cruz de OliveiraPaula Fernandes de Aguiar

Year: 2013 Journal:   Química Nova Vol: 36 (6)Pages: 885-889   Publisher: Brazilian Chemical Society

Abstract

Analytical curves are normally obtained from discrete data by least squares regression. The least squares regression of data involving significant error in both x and y values should not be implemented by ordinary least squares (OLS). In this work, the use of orthogonal distance regression (ODR) is discussed as an alternative approach in order to take into account the error in the x variable. Four examples are presented to illustrate deviation between the results from both regression methods. The examples studied show that, in some situations, ODR coefficients must substitute for those of OLS, and, in other situations, the difference is not significant.

Keywords:
Ordinary least squares Total least squares Statistics Mathematics Partial least squares regression Regression Generalized least squares Regression analysis Least-squares function approximation Robust regression Least trimmed squares Variables Linear regression Regression diagnostic Explained sum of squares Polynomial regression

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Citation History

Topics

Spectroscopy and Chemometric Analyses
Physical Sciences →  Chemistry →  Analytical Chemistry
Water Quality Monitoring and Analysis
Physical Sciences →  Environmental Science →  Industrial and Manufacturing Engineering
Advanced Statistical Methods and Models
Physical Sciences →  Mathematics →  Statistics and Probability

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