Article
Visualizing data as objects by DC (difference of convex) optimization
Author/s | Carrizosa Priego, Emilio José
Guerrero Lozano, Vanesa Romero Morales, María Dolores |
Department | Universidad de Sevilla. Departamento de Estadística e Investigación Operativa |
Publication Date | 2017 |
Deposit Date | 2017-05-02 |
Published in |
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Abstract | In this paper we address the problem of visualizing in a bounded region a
set of individuals, which has attached a dissimilarity measure and a statistical value, as convex objects. This problem, which extends the standard ... In this paper we address the problem of visualizing in a bounded region a set of individuals, which has attached a dissimilarity measure and a statistical value, as convex objects. This problem, which extends the standard Multidimensional Scaling Analysis, is written as a global optimization problem whose objective is the difference of two convex functions (DC). Suitable DC decompositions allow us to use the Difference of Convex Algorithm (DCA) in a very efficient way. Our algorithmic approach is used to visualize two real-world datasets. |
Project ID. | info:eu-repo/grantAgreement/MINECO/MTM2015-65915-R
P11-FQM-7603 FQM-329 |
Citation | Carrizosa Priego, E.J., Guerrero Lozano, V. y Romero Morales, M.D. (2017). Visualizing data as objects by DC (difference of convex) optimization. Mathematical Programming, 1-22. |
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