In this paper we propose a design pattern for self-optimizing classification systems, i.e. classifiers able to adapt their behavior to the system changes. First, we provide a formalization of a self-optimizing classifier we use to derive the design pattern. Then, we describe the pattern classes, their interactions, and validate our approach applying the proposed pattern to a real scenario. Finally, to evaluate the proposed solution we compare the behavior of the self-optimizing classifier with a not self-optimizing one. Experimental results demonstrate the approach effectiveness.

Self-optimizing classifiers: formalization and design pattern

Dazzi P;Baraglia R;
2008

Abstract

In this paper we propose a design pattern for self-optimizing classification systems, i.e. classifiers able to adapt their behavior to the system changes. First, we provide a formalization of a self-optimizing classifier we use to derive the design pattern. Then, we describe the pattern classes, their interactions, and validate our approach applying the proposed pattern to a real scenario. Finally, to evaluate the proposed solution we compare the behavior of the self-optimizing classifier with a not self-optimizing one. Experimental results demonstrate the approach effectiveness.
2008
Istituto di Scienza e Tecnologie dell'Informazione "Alessandro Faedo" - ISTI
Inglese
Thierry Priol, Marco Vanneschi
From Grids to Service and Pervasive Computing
175
187
12
978-0-387-09454-0
http://portal.acm.org/citation.cfm?id=1403892
Springer
New York
STATI UNITI D'AMERICA
Self-optimizing
Classification
ISBN 0387094547.
4
02 Contributo in Volume::02.01 Contributo in volume (Capitolo o Saggio)
268
restricted
Dazzi, P; Pasquali, M; Baraglia, R; Panciatici, A
info:eu-repo/semantics/bookPart
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/97895
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