Prior-mean-assisted Bayesian optimization application on FRIB Front-End tunning

Kilean Hwang, Tomofumi Maruta,Alexander Plastun, Kei Fukushima,Tong Zhang, Qiang Zhao,Peter Ostroumov,Yue Hao

arxiv(2022)

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摘要
Bayesian optimization~(BO) is often used for accelerator tuning due to its high sample efficiency. However, the computational scalability of training over large data-set can be problematic and the adoption of historical data in a computationally efficient way is not trivial. Here, we exploit a neural network model trained over historical data as a prior mean of BO for FRIB Front-End tuning.
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关键词
bayesian optimization,bayesian optimization application,prior-mean-assisted,front-end
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