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Storage ring nonlinear dynamics optimization with multi-objective multi-generation Gaussian process optimizer

机译:存储环非线性动力学优化,具有多目标多代高斯工艺优化

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Nonlinear beam dynamics optimization is essential in a low emittance storage ring design. Multi-objective optimization algorithms are needed in order to simultaneously optimize the dynamic aperture and the momentum aperture. In this study we demonstrate the application of a highly efficient stochastic optimization algorithm, the multi-generation Gaussian process optimizer (MG-GPO), to storage ring nonlinear dynamics optimization by successfully applying the method to the SPEAR3 upgrade lattice. It is shown that the new method, owing to its capability of selecting high rank candidates from a large number of trial solutions, converges significantly faster than the commonly used traditional algorithms, multi-objective genetic algorithms (MOGA) and particle swarm optimization (PSO).
机译:非线性光束动力学优化在低辐射存储环设计中是必不可少的。需要多目标优化算法,以便同时优化动态孔径和动量孔径。在这项研究中,我们通过成功将该方法应用于Spear3升级晶格来证明高效的随机优化算法(多代高斯工艺优化器(MG-GPO),以存储环非线性动力学优化的应用。结果表明,新方法,由于其从大量试验溶液中选择高级候选者的能力,收敛比常用的传统算法,多目标遗传算法(MOGA)和粒子群优化(PSO)更快地收敛。

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