JOURNAL ARTICLE

Novel linear search for support vector machine parameter selection

Hong-xia PangWende DongZhihai XuHuajun FengQi LiYueting Chen

Year: 2011 Journal:   Journal of Zhejiang University SCIENCE C Vol: 12 (11)Pages: 885-896   Publisher: Zhejiang University Press

Abstract

Selecting the optimal parameters for support vector machine (SVM) has long been a hot research topic. Aiming for support vector classification/regression (SVC/SVR) with the radial basis function (RBF) kernel, we summarize the rough line rule of the penalty parameter and kernel width, and propose a novel linear search method to obtain these two optimal parameters. We use a direct-setting method with thresholds to set the epsilon parameter of SVR. The proposed method directly locates the right search field, which greatly saves computing time and achieves a stable, high accuracy. The method is more competitive for both SVC and SVR. It is easy to use and feasible for a new data set without any adjustments, since it requires no parameters to set.

Keywords:
Support vector machine Computer science Kernel (algebra) Radial basis function Set (abstract data type) Radial basis function kernel Selection (genetic algorithm) Field (mathematics) Mathematical optimization Pattern recognition (psychology) Kernel method Algorithm Data mining Artificial intelligence Mathematics Artificial neural network

Metrics

9
Cited By
1.93
FWCI (Field Weighted Citation Impact)
27
Refs
0.88
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Algorithms and Applications
Physical Sciences →  Engineering →  Control and Systems Engineering
Face and Expression Recognition
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Remote Sensing and Land Use
Physical Sciences →  Earth and Planetary Sciences →  Atmospheric Science

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