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Stochastic Spin-Orbit Torque Devices as Elements for Bayesian Inference

机译:随机自旋轨道扭矩装置作为贝叶斯推理的要素

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摘要

Probabilistic inference from real-time input data is becoming increasingly popular and may be one of the potential pathways at enabling cognitive intelligence. As a matter of fact, preliminary research has revealed that stochastic functionalities also underlie the spiking behavior of neurons in cortical microcircuits of the human brain. In tune with such observations, neuromorphic and other unconventional computing platforms have recently started adopting the usage of computational units that generate outputs probabilistically, depending on the magnitude of the input stimulus. In this work, we experimentally demonstrate a spintronic device that offers a direct mapping to the functionality of such a controllable stochastic switching element. We show that the probabilistic switching of Ta/CoFeB/MgO heterostructures in presence of spin-orbit torque and thermal noise can be harnessed to enable probabilistic inference in a plethora of unconventional computing scenarios. This work can potentially pave the way for hardware that directly mimics the computational units of Bayesian inference.
机译:实时输入数据的概率推断正变得越来越流行,并且可能是启用认知智能的潜在途径之一。事实上,初步研究表明,随机功能也是人脑皮质微电路中神经元突增行为的基础。为了适应这种观察,神经形态和其他非常规计算平台最近开始采用根据输入刺激的大小而概率性地产生输出的计算单元。在这项工作中,我们通过实验证明了一种自旋电子设备,该设备可直接映射到这种可控随机开关元件的功能。我们表明,在自旋轨道转矩和热噪声存在的情况下,Ta / CoFeB / MgO异质结构的概率转换可以被利用,以在众多非常规计算场景中实现概率推断。这项工作可能为直接模仿贝叶斯推理的计算单元的硬件铺平道路。

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