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Synthesis of Custom Networks of Heterogeneous Processing Elements for Complex Physical System Emulation

机译:复杂物理系统仿真的异构处理元素定制网络的综合

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摘要

Physical system models that consist of thousands of ordinary differential equations can be synthesized to field-programmable gate arrays (FPGAs) for highly-parallelized, real-time physical system emulation. Previous work introduced synthesis of custom networks of homogeneous processing elements, consisting of processing elements that are either all general differential equation solvers or are all custom solvers tailored to solve specific equations. However, a complex physical system model may contain different types of equations such that using only general solvers or only custom solvers does not provide all of the possible speedup. We introduce methods to synthesize a custom network of heterogeneous processing elements for emulating physical systems, where each element is either a general or custom differential equation solver. We show average speedups of 45× over a 3 GHz single-core desktop processor, and of 11× and 20× over a 3 GHz four-core desktop and a 763 MHz NVIDIA graphical processing unit, respectively. Compared to a commercial high-level synthesis tool including regularity extraction, the networks of heterogeneous processing elements were on average 10.8× faster. Compared to homogeneous networks of general and single-type custom processing elements, heterogeneous networks were on average 7× and 6× faster, respectively.
机译:可以将由数千个常微分方程组成的物理系统模型合成为现场可编程门阵列(FPGA),以进行高度并行的实时物理系统仿真。先前的工作介绍了均质处理元素的定制网络的合成,这些均质化处理元素要么都是通用微分方程求解器,要么都是为定制特定方程式量身定制的所有定制求解器。但是,复杂的物理系统模型可能包含不同类型的方程,因此仅使用通用求解器或仅使用自定义求解器无法提供所有可能的加速。我们介绍了综合用于模拟物理系统的异构处理元素的自定义网络的方法,其中每个元素都是通用或自定义微分方程求解器。我们显示,在3 GHz单核台式机处理器上,平均速度分别提高了45倍,在3 GHz四核台式机和763 MHz NVIDIA图形处理单元上分别提高了11倍和20倍。与包括规则提取的商业高级综合工具相比,异构处理元素的网络平均快10.8倍。与通用和单一类型定制处理元素的同构网络相比,异构网络分别平均快7倍和6倍。

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