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Chemora: A PDE-Solving Framework for Modern High-Performance Computing Architectures

机译:Chemora:现代高性能计算体系结构的PDE解决框架

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Modern HPC architectures consist of heterogeneous multicore, many-node systems with deep memory hierarchies. Modern applications employ ever more advanced discretization methods to study multiphysics problems. Developing such applications that explore cutting-edge physics on cutting-edge HPC systems has become a complex task that requires significant HPC knowledge and experience. Unfortunately, this combined knowledge is currently out of reach for all but a few groups of application developers. Chemora is a framework for solving systems of partial differential equations (PDEs) that targets modern HPC architectures. Chemora is based on Cactus, which sees prominent usage in the computational relativistic astrophysics community. In Chemora, PDEs are expressed either in high-level LaTeX-like languages or in Mathematica. The authors use Chemora in the Einstein Toolkit to implement the Einstein equations on CPUs and on accelerators, and study astrophysical systems such as black hole binaries, neutron stars, and core-collapse supernovae.
机译:现代HPC体系结构由具有深层内存层次结构的异构多核,多节点系统组成。现代应用程序使用越来越先进的离散化方法来研究多物理场问题。开发此类应用程序以探索尖端HPC系统上的尖端物理学已成为一项复杂的任务,需要大量的HPC知识和经验。不幸的是,除了少数几类应用程序开发人员之外,所有这些知识目前都无法达到。 Chemora是用于解决针对现代HPC体系结构的偏微分方程(PDE)系统的框架。 Chemora基于Cactus,在计算相对论天体物理学界中占有重要的地位。在Chemora中,PDE以类似LaTeX的高级语言或Mathematica表示。作者使用Einstein工具包中的Chemora在CPU和加速器上实现Einstein方程,并研究天体物理系统,例如黑洞双星,中子星和核塌陷超新星。

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