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ChangYong Oh

4 accepted papers

2022

Batch Bayesian Optimization on Permutations using the Acquisition Weighted Kernel

NeurIPS 2022accept

In this work we propose a batch Bayesian optimization method for combinatorial problems on permutations, which is well suited for expensive-to-evaluate objectives. We first introduce LAW, an efficient batch acquisition method based on determinantal point processes using the acquisition weighted kern…

2021

Mixed variable Bayesian optimization with frequency modulated kernels

UAI 2021poster

The sample efficiency of Bayesian optimization(BO) is often boosted by Gaussian Process(GP) surrogate models. However, on mixed variable spaces, surrogate models other than GPs are prevalent, mainly due to the lack of kernels which can model complex dependencies across different types of variables.…

2019

Combinatorial Bayesian Optimization using the Graph Cartesian Product

NeurIPS 2019poster

This paper focuses on Bayesian Optimization (BO) for objectives on combinatorial search spaces, including ordinal and categorical variables. Despite the abundance of potential applications of Combinatorial BO, including chipset configuration search and neural architecture search, only a handful of m…