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JANČÍK, S. MATOUŠEK, R. DVOŘÁK, J. ABBADI, A.
Original Title
The ICP for Fragment Identification
Type
conference paper
Language
English
Original Abstract
In technical practice we are very often confronted with need to approximate functions from measured values. Another frequent task is a calculation of measure of central tendency of sample data. For a good reason the method of least squares and the statistics like mean or median are being used. The goal of this paper is to show some nonstandard metrics usable in tasks of creation of approximation model or in tasks of symbolic regression. These metrics, as will be shown, can be created using so-called generating function. It is important to note these metrics can affect robustness of created model concerning extremely deviated values. Using these exotic metrics in tasks of data approximation or symbolic regression we get nonlinear unconstrained optimization task. To solve such task it is necessary to use adequate optimization strategies such as soft-computing methods (evolution algorithms, HC12, differential evolution, etc.) or classical methods of nonlinear optimization (Nelder-Mead, conjugate gradient, Levenberg–Marquardt algorithm, etc.).
Keywords
metric, exotic metric, function approximation, generating function
Authors
JANČÍK, S.; MATOUŠEK, R.; DVOŘÁK, J.; ABBADI, A.
RIV year
2012
Released
27. 6. 2012
Publisher
VUT
Location
Brno
ISBN
978-80-214-4540-6
Book
18th International Conference of Soft Computing, MENDEL 2012
Edition
2011
Edition number
1
1803-3814
Periodical
Mendel Journal series
Year of study
Number
State
Czech Republic
Pages from
588
Pages to
593
Pages count
6
BibTex
@inproceedings{BUT93299, author="Stanislav {Jančík} and Radomil {Matoušek} and Jiří {Dvořák} and Ahmad {Abbadi}", title="The ICP for Fragment Identification", booktitle="18th International Conference of Soft Computing, MENDEL 2012", year="2012", series="2011", journal="Mendel Journal series", volume="2012", number="1", pages="588--593", publisher="VUT", address="Brno", isbn="978-80-214-4540-6", issn="1803-3814" }