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mPPM, Viewed as a Co-Design Effort

机译:mPPM,被视为共同设计的成果

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摘要

The Piecewise Parabolic Method (PPM) was designed as a means of exploring compressible gas dynam-ics problems of interest in astrophysics, including super-sonic jets, compressible turbulence, stellar convection, and turbulent mixing and burning of gases in stellar interiors. Over time, the capabilities encapsulated in PPM have co-evolved with the availability of a series of high performance computing platforms. Implementation of the algorithm has adapted to and advanced with the architectural capabilities and characteristics of these machines. This adaptability of our PPM codes has enabled targeted astrophysical applica-tions of PPM to exploit these scarce resources to explore complex physical phenomena. Here we describe the means by which this was accomplished, and set a path forward, with a new miniapp, mPPM, for continuing this process in a diverse and dynamic architecture design environment. Adaptations in mPPM for the latest high performance machines are discussed that address the important issue of limited bandwidth from locally attached main memory to the microprocessor chip.
机译:分段抛物线法(PPM)是一种用于探索天体物理学感兴趣的可压缩气体动力问题的方法,其中包括超音速喷射,可压缩湍流,恒星对流以及恒星内部气体的湍流混合和燃烧。随着时间的流逝,PPM中封装的功能与一系列高性能计算平台的可用性共同发展。算法的实现已适应这些机器的体系结构功能和特点并随着这些机器的特性而发展。我们PPM代码的这种适应性使PPM的目标天体应用能够利用这些稀缺资源来探索复杂的物理现象。在这里,我们描述了完成此任务的方法,并使用新的miniapp mPPM设置了前进的道路,以便在多样化和动态的架构设计环境中继续执行此过程。讨论了最新高性能机器在mPPM中的修改,以解决从本地连接的主内存到微处理器芯片的有限带宽这一重要问题。

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