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PLoS One ; 10(4): e0121844, 2015.
Article in English | MEDLINE | ID: mdl-25875591

ABSTRACT

This paper addresses the challenging task of computing multiple roots of a system of nonlinear equations. A repulsion algorithm that invokes the Nelder-Mead (N-M) local search method and uses a penalty-type merit function based on the error function, known as 'erf', is presented. In the N-M algorithm context, different strategies are proposed to enhance the quality of the solutions and improve the overall efficiency. The main goal of this paper is to use a two-level factorial design of experiments to analyze the statistical significance of the observed differences in selected performance criteria produced when testing different strategies in the N-M based repulsion algorithm. The main goal of this paper is to use a two-level factorial design of experiments to analyze the statistical significance of the observed differences in selected performance criteria produced when testing different strategies in the N-M based repulsion algorithm.


Subject(s)
Algorithms , Nonlinear Dynamics , Analysis of Variance , Computing Methodologies , Humans , Hydrocarbons/chemistry , Models, Chemical , Nervous System Physiological Phenomena , Normal Distribution , Probability
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