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A Chain Rule for the Expected Suprema of Gaussian Processes

机译:高斯流程预期省份的连锁规则

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The expected supremum of a Gaussian process indexed by the image of an index set under a function class is bounded in terms of separate properties of the index set and the function class. The bound is relevant to the estimation of nonlinear transformations or the analysis of learning algorithms whenever hypotheses are chosen from composite classes, as is the case for multi-layer models.
机译:在函数类下,由函数类中的索引集的图像索引的高斯进程的预期超级界限在索引集的单独属性和函数类方面界定。当从复合类别选择假设时,界限与非线性变换的估计或学习算法的分析相关,就像多层模型一样。

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