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Introduction to Bayesian Optimization (BO)
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Guides
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Guides
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Introduction to Bayesian Optimization (BO)
Gaussian Process
Optimizing the hyper-parameters of a Gaussian process
Kernel function
Acquisition function
Limbo-specific concepts
Mean function
State-based optimization
Using Limbo as an environment for scientific experiments
What is a Limbo experiment?
How to quickly create a new experiment?
How to add / compile your experiment?
How to submit jobs with limbo on clusters?
Variants
Parameters
Default parameters
Dynamic parameters
Arrays
Multiple sets of parameters
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