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Information content of data and variables and types of weighting in least-squares regression methods
Authors:J.J.Baeza Baeza  G.Ramis Ramos  C.Mongay Fernández
Affiliation:Departament de Quimica Analitica, Facultat de Quimica, Universitat de València, 46100 Burjassot Spain
Abstract:Algorithms are given for evaluating the relative amount of useful information related to a particular parameter which is carried by individual data points and intervals of the variables. The algorithms provide an efficient means of using the information contained in a set of data. Applications to the optimization of weighting in regression methods are described. Several informational and combined informational-statistical types of weighting are studied as a means of improving the accuracy and precision of the parameters obtained by non-linear regression.
Keywords:Information content of data  Regression evaluation of parameters
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