DocumentCode :
604232
Title :
Noisy data fitting with B-splines using hierarchical genetic algorithm
Author :
Garcia-Capulin, C.H. ; Trejo-Caballero, G. ; Rostro-Gonzalez, H. ; Avina-Cervantes, J.G.
Author_Institution :
Dept. of Mechatron., Inst. Tecnol. Super. de Irapuato, Irapuato, Mexico
fYear :
2013
fDate :
11-13 March 2013
Firstpage :
62
Lastpage :
66
Abstract :
Data fitting by splines in noise presence, has been widely used in data analysis and engineering applications. In this regard, an important problem associated with data fitting by splines is the adequate selection of the number and location of the knots, as well as the calculation of the splines coefficients. Typically, these parameters are separately estimated in the aim of solving this non-linear problem. In this paper, we use a hierarchical genetic algorithm to tackle the data fitting problem by B-splines. The proposed approach is based on a novel hierarchical gene structure for the chromosomal representation, thus, allowing us to determine the number and location of the knots, and the B-spline coefficients automatically and simultaneously. The method is fully based on genetic algorithms and does not require subjective parameters like smooth factor or knot locations to perform the solution. In order to validate the efficacy of the proposed approach, numerical results from tests on smooth functions have been included.
Keywords :
data analysis; genetic algorithms; splines (mathematics); B-splines; chromosomal representation; data analysis; engineering applications; hierarchical gene structure; hierarchical genetic algorithm; knot location; knot number; noisy data fitting; splines coefficient calculation; Biological cells; Computational modeling; Estimation; Genetic algorithms; Mathematical model; Optimization; Splines (mathematics); B-splines; Genetic algorithm; data fitting; regression;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electronics, Communications and Computing (CONIELECOMP), 2013 International Conference on
Conference_Location :
Cholula
Print_ISBN :
978-1-4673-6156-9
Type :
conf
DOI :
10.1109/CONIELECOMP.2013.6525760
Filename :
6525760
Link To Document :
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