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Exploring the Offload Execution Model in the Intel Xeon Phi via Matrix Inversion

机译:通过矩阵反转探索Intel Xeon Phi中的卸载执行模型

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The explicit inversion of dense matrices appears in a numerous key scientific and engineering applications such as model reduction or optimal control, asking for the exploitation of high performance computing techniques and architectures when the problem dimension is large. Gauss-Jordan elimination (GJE) is an efficient in-place method for matrix inversion that exposes large amounts of dataparallelism, making it very convenient for hardware accelerators such as graphics processors (GPUs) or the Intel Xeon Phi. In this paper, we present and evaluate several practical implementations of GJE, with partial row pivoting, that especially exploit the off-load execution model available on the Intel Xeon Phi to carry out a significant fraction of the computations on the accelerator. Numerical experiments on a system with two Intel Xeon E5-2640v3 processors and an Intel Xeon Phi 7120P compare the efficiency of these implementations, with the most efficient case delivering about 700 billions double-precision floating-point operations per second.
机译:密集矩阵的显式反转出现在众多关键的科学和工程应用中,例如模型减少或最佳控制,要求在问题尺寸大时利用高性能计算技术和架构。高斯 - 乔丹消除(GJE)是矩阵反演的有效的矩阵逆势的现场方法,使得具有大量数据达相性主义,使得硬件加速器(如图形处理器(GPU)或英特尔Xeon Phi等硬件加速器非常方便。在本文中,我们展示并评估了GJE的几种实际实现,部分行枢转,特别是利用Intel Xeon Phi上可用的卸载执行模型,在加速器上执行大部分计算。具有两台英特尔Xeon E5-2640V3处理器系统的数值实验和英特尔Xeon Phi 7120P比较了这些实施的效率,具有最有效的案例,每秒提供约700亿两精度浮点操作。

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