Optimizing Discrete Spaces via Expensive Evaluations: A Learning to Search Framework
Aryan Deshwal, Syrine Belakaria, Janardhan Rao Doppa, Alan Fern
Abstract
We consider the problem of optimizing expensive black-box functions over discrete spaces (e.g., sets, sequences, graphs). The key challenge is to select a sequence of combinatorial structures to evaluate, in order to identify high-performing structures as quickly as possible. Our main contribution is to introduce and evaluate a new learning-to-search framework for this problem called L2S-DISCO. The key insight is to employ search procedures guided by control knowledge at each step to select the next structure and to improve the control knowledge as new function evaluations are observed. We provide a concrete instantiation of L2S-DISCO for local search procedure and empirically evaluate it on diverse real-world benchmarks. Results show the efficacy of L2S-DISCO over state-of-the-art algorithms in solving complex optimization problems.
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Install the CLIlune papers fulltext de4977a4-4e65-4fee-a63d-081164809e88Cited by top-tier papers8
- Think Global and Act Local: Bayesian Optimisation over High-Dimensional Categorical and Mixed Search SpacesXingchen Wan, Vu Nguyen, Huong Ha, Bin Xin Ru et al.ICML 2021 · 79 citations
- Combining Latent Space and Structured Kernels for Bayesian Optimization over Combinatorial SpacesAryan Deshwal, Janardhan Rao DoppaNeurIPS 2021 · 65 citations
- Bayesian Optimization over Hybrid SpacesAryan Deshwal, Syrine Belakaria, Janardhan Rao DoppaICML 2021 · 41 citations
- Mercer Features for Efficient Combinatorial Bayesian OptimizationAryan Deshwal, Syrine Belakaria, Janardhan Rao DoppaAAAI 2021 · 39 citations
- Bayesian Optimization over Permutation SpacesAryan Deshwal, Syrine Belakaria, Janardhan Rao Doppa, Dae Hyun KimAAAI 2022 · 27 citations
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