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Analog Spike Processing with High Scalability and Low Energy Consumption Using Thermal Degree of Freedom in Phase Transition Materials

机译:利用相变材料中的热自由度实现高可扩展性和低能耗的模拟尖峰处理

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Spike integration and threshold processing are the basic signal processing in brain-inspired computing, such as deep learning, reservoir computing etc. In such processes, analog technology is essential for suppressing energy consumption. However, analog technology often faces problems in miniaturization due to deteriorated noise tolerance by scaling and intrinsically large analog elements such as capacitors. Here, we propose to exploit a thermal degree of freedom in phase transition materials for scalable and noise-tolerant analog spike processing. We focus on a two-terminal metal-insulator-transition VO2 device, where quasi-adiabatic Joule heating enables efficient spike integration, and metal-insulator transition implements threshold processing. This VO2 device is highly scalable, consuming only ~1fJ/spike (smallest so far) according to the simulation. By using this device, fully autonomous spike integration and threshold processing are also demonstrated. Exploiting the quasi-adiabatic thermal degree of freedom will facilitate scalable and energy-efficient analog implementation for a wide range of brain-inspired computing.
机译:峰值整合和阈值处理是灵感来自大脑的计算(如深度学习,储层计算等)中的基本信号处理。在此类过程中,模拟技术对于抑制能耗至关重要。然而,由于缩放和本质上较大的模拟元件(例如电容器)而导致的噪声容忍度降低,因此模拟技术通常会面临小型化的问题。在这里,我们建议在相变材料中利用热自由度进行可扩展和耐噪声的模拟尖峰处理。我们专注于两端金属-绝缘体转变VO 2 准绝热焦耳加热可实现有效的尖峰积分,而金属-绝缘体过渡实现阈值处理。这个VO 2 该设备具有很高的可扩展性,根据仿真,它仅消耗〜1fJ / spike(迄今为止最小)。通过使用该设备,还演示了完全自动的尖峰积分和阈值处理。利用准绝热的热自由度将促进可扩展的,高能效的模拟实现,适用于各种以大脑为灵感的计算。

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