论文标题

量化状态核 - 核心方程中的不确定性和相关性

Quantifying uncertainties and correlations in the nuclear-matter equation of state

论文作者

Drischler, C., Melendez, J. A., Furnstahl, R. J., Phillips, D. R.

论文摘要

我们对无限核物质的手性有效野外理论($χ$ eft)进行统计上严格的不确定性定量(UQ),最高是核饱和密度的两倍。状态方程(EOS)基于高阶多体扰动理论的计算,其核子核子和三核子相互作用在$χ$ eft的扩张中最高为第四阶。从这些计算中,我们新开发的贝叶斯机器学习方法提取了相关的EFT截断误差的大小和平滑度。然后,我们提出了一种新型扩展,该扩展使用多任务机学习来揭示不同质子级分处的EOS之间的相关性。纯中子物质中推断的中$ $χ$ eft分解量表与自由空间核子核子散射相一致。这些重大进展使我们能够为核饱和点提供后验分布,并传播理论不确定性以得出数量:对称核物质的压力和不可压缩性,核对称能及其导数。我们的结果通过统计诊断验证,表明对不同密度和不同可观察到的截断 - 错误相关性的理解对于可靠的UQ至关重要。此处开发的方法可公开作为注释的Jupyter笔记本电脑。

We perform statistically rigorous uncertainty quantification (UQ) for chiral effective field theory ($χ$EFT) applied to infinite nuclear matter up to twice nuclear saturation density. The equation of state (EOS) is based on high-order many-body perturbation theory calculations with nucleon-nucleon and three-nucleon interactions up to fourth order in the $χ$EFT expansion. From these calculations our newly developed Bayesian machine-learning approach extracts the size and smoothness properties of the correlated EFT truncation error. We then propose a novel extension that uses multitask machine learning to reveal correlations between the EOS at different proton fractions. The inferred in-medium $χ$EFT breakdown scale in pure neutron matter and symmetric nuclear matter is consistent with that from free-space nucleon-nucleon scattering. These significant advances allow us to provide posterior distributions for the nuclear saturation point and propagate theoretical uncertainties to derived quantities: the pressure and incompressibility of symmetric nuclear matter, the nuclear symmetry energy, and its derivative. Our results, which are validated by statistical diagnostics, demonstrate that an understanding of truncation-error correlations between different densities and different observables is crucial for reliable UQ. The methods developed here are publicly available as annotated Jupyter notebooks.

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