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Accuracy and Performance Trade-Offs of Logarithmic Number Units in Multi-Core Clusters

机译:多核集群中对数单元的精度和性能折衷

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When compared to traditional floating point (FP) number representation, logarithmic number systems (LNS) have superior performance when evaluating complex functions, since multiplications and divisions can be calculated with ease in the logarithmic domain. However, additions and subtractions become costly nonlinear operations. Efficient LNS units (LNUs) implementing ADD/SUB operations in hardware rely on interpolation techniques to save area. Even the most advanced LNUs are still larger than standard single-precision FPUs -- which renders them impractical for most general purpose processors. In this paper, we show that in a multi-core setting, when shared among several processor cores, LNUs become a very attractive solution. We present a methodology to generate LNUs with various error bounds and perform a design space exploration with different parameterizations. We show that already small precision relaxations in the order of a few units in the last place (ulp) reduce the LNU area significantly. Using examples from several signal processing domains, we demonstrate that shared approximate LNUs can outperform their standard FP counterpart on average by 2.14x in speed and 1.92x in energy-efficiency, with insignificant degradation of the output quality.
机译:与传统浮点(FP)数字表示相比,对数数字系统(LNS)在评估复杂函数时具有优越的性能,因为可以在对数域中轻松计算乘法和除法。但是,加法和减法成为代价高昂的非线性运算。在硬件中实现ADD / SUB操作的高效LNS单元(LNU)依靠插值技术来节省面积。即使是最先进的LNU仍然比标准单精度FPU还要大-这使得它们对于大多数通用处理器来说是不切实际的。在本文中,我们表明,在多核环境中,当多个处理器内核之间共享LNU时,它们将成为非常有吸引力的解决方案。我们提出一种生成具有各种误差范围的LNU并使用不同的参数化进行设计空间探索的方法。我们表明,在最后几个位置(ulp)的几个单位的数量级中已经很小的精度松弛会显着减小LNU面积。通过使用来自多个信号处理领域的示例,我们证明了共享的近似LNU在速度上和性能效率上平均可比其标准FP分别高出2.14倍和1.92倍,并且输出质量的下降不明显。

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