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Mapping a Jacobi Iterative Solver onto a High-Performance Heterogeneous Computer

机译:将Jacobi迭代解算器映射到高性能异构计算机上

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摘要

High-performance heterogeneous computers that employ field programmable gate arrays (FPGAs) as computational elements are known as high-performance reconfigurable computers (HPRCs). For floating-point applications, these FPGA-based processors must satisfy a variety of heuristics and rules of thumb to achieve a speedup compared with their software counterparts. By way of a simple sparse matrix Jacobi iterative solver, this paper illustrates some of the issues associated with mapping floating-point kernels onto HPRCs. The Jacobi method was chosen based on heuristics developed from earlier research. Furthermore, Jacobi is relatively easy to understand, yet is complex enough to illustrate the mapping issues. This paper is not trying to demonstrate the speedup of a particular application nor is it suggesting that Jacobi is the best way to solve equations. The results demonstrate a nearly threefold wall clock runtime speedup when compared with a software implementation. A formal analysis shows that these results are reasonable. The purpose of this paper is to illuminate the challenging floating-point mapping process while simultaneously showing that such mappings can result in significant speedups. The ideas revealed by research such as this have already been and should continue to be used to facilitate a more automated mapping process.
机译:采用现场可编程门阵列(FPGA)作为计算元素的高性能异构计算机被称为高性能可重构计算机(HPRC)。对于浮点应用,这些基于FPGA的处理器必须满足各种启发式方法和经验法则,以实现与软件同类产品相比的加速。通过一个简单的稀疏矩阵Jacobi迭代求解器,本文说明了一些将浮点内核映射到HPRC的问题。 Jacobi方法是根据早期研究开发的启发式方法选择的。此外,Jacobi相对容易理解,但足够复杂以说明映射问题。本文不试图证明特定应用程序的加速,也不暗示Jacobi是求解方程式的最佳方法。结果表明,与软件实现相比,挂钟运行时的速度提高了近三倍。正式分析表明,这些结果是合理的。本文的目的是阐明具有挑战性的浮点映射过程,同时说明这种映射可以显着提高速度。诸如此类的研究揭示的想法已经并且应该继续用于促进更自动化的制图过程。

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