In this article, we will describe how the kernel approach can be easily implemented for simple and typical knowledge discovery problems, within the context of machine learning. Since the core of this paradigm relies on the so called kernel trick, we will mainly focus on how this fundamental tool can be effectively used, in the design and the application of an inference procedures. In fact, the kernel approach has not only offered to the learning machine community the opportunity of working both with nonlinear predictive models and with different heterogeneous structures, but it has also given a new way to re-design old standard procedures, in order to get more powerful and relative robust models.

(2019). Kernel Machines: Applications . Retrieved from http://hdl.handle.net/10446/150348

Kernel Machines: Applications

Dondi, Riccardo
2019-01-01

Abstract

In this article, we will describe how the kernel approach can be easily implemented for simple and typical knowledge discovery problems, within the context of machine learning. Since the core of this paradigm relies on the so called kernel trick, we will mainly focus on how this fundamental tool can be effectively used, in the design and the application of an inference procedures. In fact, the kernel approach has not only offered to the learning machine community the opportunity of working both with nonlinear predictive models and with different heterogeneous structures, but it has also given a new way to re-design old standard procedures, in order to get more powerful and relative robust models.
Inglese
2019
Encyclopedia of Bioinformatics and Computational Biology. Volume 1
Cannataro, Mario;
cartaceo
online
9780128114322
511
518
Netherlands
Amsterdam
Elsevier
esperti anonimi
Settore INF/01 - Informatica
Classification; Clustering; Kernel Function; Kernel Methods; Regression
Non definito
(2019). Kernel Machines: Applications . Retrieved from http://hdl.handle.net/10446/150348
1.2 Contributi in volume - Book chapters::1.2.04 Voci (in dizionario o enciclopedia) - Dictionary/Encyclopedia entries
Zoppis, Italo; Mauri, Giancarlo; Dondi, Riccardo
3
271
reserved
info:eu-repo/semantics/bookPart
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