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Floating-Point Numeric Function Generators Based on Piecewise-Split EVMDDs

机译:基于分段拆分EVMDD的浮点数值函数生成器

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This paper proposes a new architecture for memory-based floating-point numeric function generators (NFGs). The design method uses piecewise-split edge-valued multi-valued decision diagrams (EVMDDs). To design NFGs with less memory size, we partition the domain of the floating-point function into segments, and represent the function using an EVMDD for each segment. By realizing each EVMDD with hardware, we obtain the floating-point NFG. This paper also presents an algorithm that partitions the domain by decomposing the edge-valued binary decision diagram(EVBDD) representing the whole floating-point function. Experimental results show that, for a single-precision floating-point function, our new NFG requires 40% to 65% less memory than any previous one. An advantage of our algorithm is that it can be applied to many different functions.
机译:本文提出了一种基于内存的浮点数值函数生成器(NFG)的新体系结构。设计方法使用分段分割的边值多值决策图(EVMDD)。为了设计具有较小内存大小的NFG,我们将浮点函数的域划分为多个段,并使用每个段的EVMDD表示该功能。通过使用硬件实现每个EVMDD,我们可以获得浮点NFG。本文还提出了一种算法,该算法通过分解代表整个浮点函数的边值二进制决策图(EVBDD)来对域进行划分。实验结果表明,对于单精度浮点函数,我们的新NFG所需的内存比以前的任何一种都要少40%至65%。我们算法的一个优点是它可以应用于许多不同的功能。

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