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ICML2022顶会

Scalable First-Order Bayesian Optimization via Structured Automatic Differentiation

Sebastian E. Ament, Carla P. Gomes

2022年份
12被引次数
7顶会引用

摘要

Bayesian Optimization (BO) has shown great promise for the global optimization of functions that are expensive to evaluate, but despite many successes, standard approaches can struggle in high dimensions. To improve the performance of BO, prior work suggested incorporating gradient information into a Gaussian process surrogate of the objective, giving rise to kernel matrices of size nd×ndnd \times nd for nn observations in dd dimensions. Naïvely multiplying with (resp. inverting) these matrices requires O(n2d2)\mathcal{O}(n^2d^2) (resp. O(n3d3\mathcal{O}(n^3d^3)) operations, which becomes infeasible for moderate dimensions and sample sizes. Here, we observe that a wide range of kernels gives rise to structured matrices, enabling an exact O(n2d)\mathcal{O}(n^2d) matrix-vector multiply for gradient observations and O(n2d2)\mathcal{O}(n^2d^2) for Hessian observations. Beyond canonical kernel classes, we derive a programmatic approach to leveraging this type of structure for transformations and combinations of the discussed kernel classes, which constitutes a structure-aware automatic differentiation algorithm. Our methods apply to virtually all canonical kernels and automatically extend to complex kernels, like the neural network, radial basis function network, and spectral mixture kernels without any additional derivations, enabling flexible, problem-dependent modeling while scaling first-order BO to high dd.

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