论文标题
Snowmass2021计算前沿白皮书:宇宙学模拟和建模
Snowmass2021 Computational Frontier White Paper: Cosmological Simulations and Modeling
论文作者
论文摘要
强大的新观察设施将在未来十年内上网,从而在“宇宙边界”中实现了许多发现机会,该机构针对早期宇宙,暗物质和暗能量的物理学的理解,以及基本物理学的宇宙学探针,例如中微块和爱因斯坦重力的修饰。将利用不同实验之间的协同作用,以提出新的宇宙探针,并最大程度地减少各个调查中存在的系统偏见。该观察计划的成功要求将其与匹配的最新模拟和建模工作相结合。下一代宇宙学建模将越来越多地关注能够建模跨越多波段的天空输出的物理模拟。这些模拟将具有前所未有的分辨率,量覆盖范围,并且必须为各个调查以及跨不同调查的互相关提供保证的高保真结果。 The needed advances are as follows: (1) Development of scientifically rich and broadly-scoped simulations, which capture the relevant physics and correlations between probes (2) Accurate translation of simulation results into realistic image or spectral data to be directly compared with observations (3) Improved emulators and/or data-driven methods serving as surrogates for expensive simulations, constructed from a finite set of full-physics simulations (4) Detailed and用于模拟和分析工具的透明验证和验证程序。 (简略)
Powerful new observational facilities will come online over the next decade, enabling a number of discovery opportunities in the "Cosmic Frontier", which targets understanding of the physics of the early universe, dark matter and dark energy, and cosmological probes of fundamental physics, such as neutrino masses and modifications of Einstein gravity. Synergies between different experiments will be leveraged to present new classes of cosmic probes as well as to minimize systematic biases present in individual surveys. Success of this observational program requires actively pairing it with a well-matched state-of-the-art simulation and modeling effort. Next-generation cosmological modeling will increasingly focus on physically rich simulations able to model outputs of sky surveys spanning multiple wavebands. These simulations will have unprecedented resolution, volume coverage, and must deliver guaranteed high-fidelity results for individual surveys as well as for the cross-correlations across different surveys. The needed advances are as follows: (1) Development of scientifically rich and broadly-scoped simulations, which capture the relevant physics and correlations between probes (2) Accurate translation of simulation results into realistic image or spectral data to be directly compared with observations (3) Improved emulators and/or data-driven methods serving as surrogates for expensive simulations, constructed from a finite set of full-physics simulations (4) Detailed and transparent verification and validation programs for both simulations and analysis tools. (Abridged)