A True Random Number Generator for Probabilistic Computing using Stochastic Magnetic Actuated Random Transducer Devices

Ankit Shukla, L. Heller, Md Golam Morshed, L. Rehm, Avik W. Ghosh, A. Kent, S. Rakheja
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引用次数: 1

Abstract

Magnetic tunnel junctions (MTJs), which are the fundamental building blocks of spintronic devices, have been used to build true random number generators (TRNGs) with different trade-offs between throughput, power, and area requirements. MTJs with high-barrier magnets (HBMs) have been used to generate random bitstreams with ≲ 200 Mb/s throughput and pJ/bit energy consumption. A high temperature sensitivity, however, adversely affects their performance as a TRNG. Superparamagnetic MTJs employing low-barrier magnets (LBMs) have also been used for TRNG operation. Although LBM-based MTJs can operate at low energy, they suffer from slow dynamics, sensitivity to process variations, and low fabrication yield. In this paper, we model a TRNG based on medium-barrier magnets (MBMs) with perpendicular magnetic anisotropy. The proposed MBM-based TRNG is driven with short voltage pulses to induce ballistic, yet stochastic, magnetization switching. We show that the proposed TRNG can operate at frequencies of about 500 MHz while consuming less than 100 fJ/bit of energy. In the short-pulse ballistic limit, the switching probability of our device shows robustness to variations in temperature and material parameters relative to LBMs and HBMs. Our results suggest that MBM-based MTJs are suitable candidates for building fast and energy-efficient TRNG hardware units for probabilistic computing.
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基于随机磁驱动随机换能器的概率计算真随机数发生器
磁隧道结(mtj)是自旋电子器件的基本组成部分,已被用于构建具有吞吐量、功率和面积要求之间不同权衡的真随机数发生器(trng)。具有高势垒磁体(HBMs)的MTJs已被用于产生随机比特流,其吞吐量为≤200mb /s,能量消耗为pJ/bit。然而,高温敏感性会对其作为TRNG的性能产生不利影响。采用低势垒磁体(lbm)的超顺磁mtj也被用于TRNG操作。尽管基于lbm的MTJs可以在低能量下工作,但它们存在动力学慢、对工艺变化敏感和制造良率低的问题。在本文中,我们建立了一个基于垂直磁各向异性的中垒磁体的TRNG模型。所提出的基于mbm的TRNG由短电压脉冲驱动,以诱导弹道但随机的磁化开关。我们表明,所提出的TRNG可以在大约500 MHz的频率下工作,而消耗的能量小于100 fJ/bit。在短脉冲弹道极限下,相对于lbm和HBMs,我们的器件的开关概率对温度和材料参数的变化具有鲁棒性。我们的研究结果表明,基于mbm的mtj是构建用于概率计算的快速节能TRNG硬件单元的合适人选。
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