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Bayesian Optimisation

Expensive black-box functions are a common problem in many disciplines, including tuning the parameters of machine learning algorithms, robotics, and other engineering design problems. Bayesian Optimisation is a principled and efficient technique for the global optimisation of these functions. The idea behind Bayesian Optimisation is to place a prior distribution over the target function and then update that prior with a set of “true” observations of the target function by expensively evaluating it in order to produce a posterior predictive distribution. The posterior then informs where to make the next observation of the target function through the use of an acquisition function, which balances the exploitation of regions known to have good performance with the exploration of regions where there is little information about the function’s response.

Source: A Bayesian Approach for the Robust Optimisation of Expensive-to-Evaluate Functions

Papers

Showing 2650 of 221 papers

TitleStatusHype
Multi-Objective Bayesian Optimisation and Joint Inversion for Active Sensor FusionCode1
EXPObench: Benchmarking Surrogate-based Optimisation Algorithms on Expensive Black-box FunctionsCode1
SOBER: Highly Parallel Bayesian Optimization and Bayesian Quadrature over Discrete and Mixed SpacesCode1
Approximate Neural Architecture Search via Operation Distribution Learning0
Adaptive Model Predictive Control by Learning Classifiers0
Automatic Tuning of Stochastic Gradient Descent with Bayesian Optimisation0
Automatic Clustering for Unsupervised Risk Diagnosis of Vehicle Driving for Smart Road0
Approximate Bayesian Optimisation for Neural Networks0
Beyond Expected Return: Accounting for Policy Reproducibility when Evaluating Reinforcement Learning Algorithms0
Automated Machine Learning on Big Data using Stochastic Algorithm Tuning0
Approximate Bayesian inference from noisy likelihoods with Gaussian process emulated MCMC0
Automated control and optimisation of laser driven ion acceleration0
Bayesian Optimisation for Safe Navigation under Localisation Uncertainty0
Bayesian Optimisation for Robust Model Predictive Control under Model Parameter Uncertainty0
Bayesian Search for Robust Optima0
Time-Varying Gaussian Process Bandits with Unknown Prior0
Bayesian Optimisation for Machine Translation0
A Two-Stage Bayesian Optimisation for Automatic Tuning of an Unscented Kalman Filter for Vehicle Sideslip Angle Estimation0
Attacking Graph Classification via Bayesian Optimisation0
Bayesian Optimisation for Constrained Problems0
Bayesian Optimisation for Mixed-Variable Inputs using Value Proposals0
Antifragile and Robust Heteroscedastic Bayesian Optimisation0
Bayesian Quantile and Expectile Optimisation0
Bayesian Optimisation for Active Monitoring of Air Pollution0
Bayesian Optimisation for a Biologically Inspired Population Neural Network0
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