MULTI-SCALE GAUSSIAN PROCESSES MODEL

被引:0
|
作者
Zhou Yatong Zhang Taiyi Li Xiaohe (School of Electronic and Information Engineering
机构
关键词
Gaussian Processes (GP); Wavelet theory; Multi-scale; Error bar; Machine learning;
D O I
暂无
中图分类号
TN911.7 [信号处理];
学科分类号
0711 ; 080401 ; 080402 ;
摘要
A novel model named Multi-scale Gaussian Processes (MGP) is proposed. Motivated by the ideas of multi-scale representations in the wavelet theory, in the new model, a Gaussian process is represented at a scale by a linear basis that is composed of a scale function and its different translations. Finally the distribution of the targets of the given samples can be obtained at different scales. Compared with the standard Gaussian Processes (GP) model, the MGP model can control its complexity conveniently just by adjusting the scale pa-rameter. So it can trade-off the generalization ability and the empirical risk rapidly. Experiments verify the fea-sibility of the MGP model, and exhibit that its performance is superior to the GP model if appropriate scales are chosen.
引用
收藏
页码:618 / 622
页数:5
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