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Support vector machines in engineering: an overview
This paper provides an overview of the support vector machine (SVM) methodology and its
applicability to real‐world engineering problems. Specifically, the aim of this study is to …
applicability to real‐world engineering problems. Specifically, the aim of this study is to …
Multiple classifiers in biometrics. Part 2: Trends and challenges
The present paper is Part 2 in this series of two papers. In Part 1 we provided an introduction
to Multiple Classifier Systems (MCS) with a focus into the fundamentals: basic nomenclature …
to Multiple Classifier Systems (MCS) with a focus into the fundamentals: basic nomenclature …
[KÖNYV][B] Least squares support vector machines
This book focuses on Least Squares Support Vector Machines (LS-SVMs) which are
reformulations to standard SVMs. LS-SVMs are closely related to regularization networks …
reformulations to standard SVMs. LS-SVMs are closely related to regularization networks …
[KÖNYV][B] Support vector machines for pattern classification
S Abe - 2005 - Springer
Since the introduction of support vector machines, we have witnessed the huge
development in theory, models, and applications of what is so-called kernel-based methods …
development in theory, models, and applications of what is so-called kernel-based methods …
Benchmarking least squares support vector machine classifiers
Abstract In Support Vector Machines (SVMs), the solution of the classification problem is
characterized by a (convex) quadratic programming (QP) problem. In a modified version of …
characterized by a (convex) quadratic programming (QP) problem. In a modified version of …
A geometric approach to support vector machine (SVM) classification
The geometric framework for the support vector machine (SVM) classification problem
provides an intuitive ground for the understanding and the application of geometric …
provides an intuitive ground for the understanding and the application of geometric …
The generalized LASSO
V Roth - IEEE transactions on neural networks, 2004 - ieeexplore.ieee.org
In the last few years, the support vector machine (SVM) method has motivated new interest
in kernel regression techniques. Although the SVM has been shown to exhibit excellent …
in kernel regression techniques. Although the SVM has been shown to exhibit excellent …
[KÖNYV][B] Digital signal processing with Kernel methods
A realistic and comprehensive review of joint approaches to machine learning and signal
processing algorithms, with application to communications, multimedia, and biomedical …
processing algorithms, with application to communications, multimedia, and biomedical …
[PDF][PDF] Kernel affine projection algorithms
The combination of the famed kernel trick and affine projection algorithms (APAs) yields
powerful nonlinear extensions, named collectively here, KAPA. This paper is a follow-up …
powerful nonlinear extensions, named collectively here, KAPA. This paper is a follow-up …
Support vector method for robust ARMA system identification
This paper presents a new approach to auto-regressive and moving average (ARMA)
modeling based on the support vector method (SVM) for identification applications. A …
modeling based on the support vector method (SVM) for identification applications. A …