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Stochastic functions using sequential logic

机译:使用顺序逻辑的随机函数

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摘要

Stochastic computing is a novel approach to real arithmetic, offering better error tolerance and lower hardware costs over the conventional implementations. Stochastic modules are digital systems that process random bit streams representing real values in the unit interval. Stochastic modules based on finite state machines (FSMs) have been shown to realize complicated arithmetic functions much more efficiently than combinational stochastic modules. However, a general approach to synthesize FSMs for realizing arbitrary functions has been elusive. We describe a systematic procedure to design FSMs that implement arbitrary real-valued functions in the unit interval using the Taylor series approximation.
机译:随机计算是一种用于实数运算的新颖方法,与传统实现相比,它具有更好的容错能力和更低的硬件成本。随机模块是数字系统,可处理代表单位间隔中实际值的随机位流。事实证明,基于有限状态机(FSM)的随机模块比组合随机模块更有效地实现复杂的算术功能。然而,合成用于实现任意功能的FSM的一般方法难以捉摸。我们描述一种系统的过程,以设计使用泰勒级数逼近在单位间隔中实现任意实值函数的FSM。

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