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A Physics-based Model of RRAM Probabilistic Switching for Generating Stable and Accurate Stochastic Bit-streams

机译:基于物理的RRAM概率切换模型,用于生成稳定且准确的随机比特流

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摘要

A physics-based probabilistic switching model for RRAM stochastic number generator (SNG) is developed to obtain stable and accurate stochastic bit-streams (SBS) for stochastic computing. By taking account of the physical origin of intrinsic variations, the switching probability can be described under various operation schemes. By modeling the cumulative effect between continuous cycles, the probability shift (PS) which seriously affects the accuracy of SBS can be quantified. By using the model, an optimized Recover scheme is proposed to mitigate the PS, and obtain a wide range of stable switching probabilities. The model can be used to design the operation scheme of SNG and choose appropriate bitstream length to achieve target system performance according to the requirement of application. Furthermore, the model is successfully implemented to evaluate the performance of RRAM-based image processing system, which is a cost- and energy-efficient solution for edge detection.
机译:RRAM随机数生成器(SNG)的基于物理的概率切换模型被开发,以获取稳定,准确的随机比特流(SBS),用于随机计算。通过考虑固有变化的物理来源,可以在各种操作方案下描述切换概率。通过对连续循环之间的累积效应进行建模,可以量化严重影响SBS准确性的概率偏移(PS)。通过使用该模型,提出了一种优化的恢复方案来减轻PS,并获得广泛的稳定切换概率。该模型可用于设计SNG的工作方案,并根据应用需求选择合适的比特流长度,以达到目标系统性能。此外,该模型已成功实现,以评估基于RRAM的图像处理系统的性能,这是边缘检测的经济高效的解决方案。

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