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MULTI-SCALE GAUSSIAN PROCESSES MODEL

机译:多尺度高斯过程模型

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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 parameter. So it can trade-off the generalization ability and the empirical risk rapidly. Experiments verify the feasibility of the MGP model, and exhibit that its performance is superior to the GP model if appropriate scales are chosen.
机译:提出了一种新型的多尺度高斯过程模型(MGP)。受小波理论中多尺度表示思想的启发,在新模型中,高斯过程通过线性基础以尺度表示,该线性基础由尺度函数及其不同的平移组成。最后,可以以不同的比例获得给定样品的靶标分布。与标准的高斯过程(GP)模型相比,MGP模型只需调整比例参数即可方便地控制其复杂性。因此它可以快速权衡泛化能力和经验风险。实验验证了MGP模型的可行性,并证明了如果选择适当的比例尺,其性能优于GP模型。

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