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Sampling based random number generator for stochastic computing

机译:基于采样的随机数发生器,用于随机计算

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Linear feedback shift register (LFSR) has been widely used to generate stochastic bit streams. Although using LFSR's offers feasibility because of their compatibility with CMOS technology, lack of randomness and related area consumption which is linearly proportional to the number of bits in a stream satisfying a certain probability value, can easily go beyond practical limits. Until now, no distinguished and practical way has been found to compete with LFSR to generate stochastic bit streams. True random number generators (TRNG) are widely used to compensate the poor randomness of LFSR but their complex design which is increased by the sake of acquiring random source, and their uncontrollability to generate random bit stream with desired probability, which is necessary for stochastic applications, make them out of action. Here we propose a novel programmable sampling based stochastic number generator (SBRNG) using CMOS technology. We achieve 100x higher speed, and 640x effective length of stochastic bit streams compared to LFSR based generators. We also claim that the circuit area complexity in terms of the number of effective bits is much better for SBRNG compared to LFSR based generators.
机译:线性反馈移位寄存器(LFSR)已被广泛用于生成随机位流。尽管使用LFSR由于与CMOS技术的兼容性而具有可行性,但是缺乏随机性和与面积相关的面积消耗与流中满足一定概率值的位数成线性比例的相关性很容易超出实际限制。到目前为止,还没有找到与LFSR竞争产生随机比特流的杰出实用方法。真正的随机数发生器(TRNG)被广泛用于补偿LFSR的较差的随机性,但是其复杂的设计由于获取随机源而增加了其复杂的设计,并且其不可控制性以期望的概率生成随机比特流,这对于随机应用是必需的,使它们失效。在这里,我们提出了一种使用CMOS技术的新型基于可编程采样的随机数发生器(SBRNG)。与基于LFSR的生成器相比,我们实现了100倍的更高速度和640倍的有效长度的随机比特流。我们还声称,与基于LFSR的生成器相比,就有效比特数而言,SBRNG的电路区域复杂度要好得多。

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