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BRINGING HIGH-PERFORMANCE RECONFIGURABLE COMPUTING TO EXACT COMPUTATIONS

机译:为确切计算带来高性能可重新配置计算

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Numerical non-robustness is a recurring phenomenon in scientific computing. It is primarily caused by numerical errors arising because of fixed-precision arithmetic in integer and/or floating-point computations. Exact computation, based on arbitrary-precision arithmetic, has been developed over the last decade as an emerging numerical computation paradigm in response to this problem of numerical non-robustness. Exact arithmetic, specifically arbitrary-precision arithmetic, has been traditionally implemented using efficient software libraries such as GNU Multi-Precision (GMP). However, this results in a slower arithmetic performance when compared to fixed-precision arithmetic. In this paper we present a first effort, to the best of our knowledge, of reconfigurable hardware support for arbitrary-precision arithmetic. The proposed hardware architectures are based on virtual convolution scheduling which is derived from a formal representation of the problem. Targeting high performance and efficiency, dynamic (non-linear) pipelines techniques were exploited to eliminate the effects of deeply-pipelined operators. Referenced to GMP, our experiments showed promising results.
机译:数值非鲁棒性是科学计算中的重复现象。它主要由由于整数和/或浮点计算中的固定精度算术而产生的数值误差引起的。基于任意精度算术的确切计算已经在过去十年中开发为新兴数值计算范例,响应于数值不稳健性的这个问题。确切的算术,特别是任意精度算术,传统上使用了高效的软件库(如GNU多精度(GMP))实现。然而,与固定精度算术相比,这导致算术性能较慢。在本文中,我们提供了一项努力,据我们所知,可重新配置的硬件支持对任意精度算法。所提出的硬件架构基于虚拟卷积调度,该调度源自问题的正式表示。针对高性能和效率,利用动态(非线性)管道技术,以消除深管制算子的影响。参考GMP,我们的实验表现出了有希望的结果。

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