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A Novel Universal Interface for Constructing Memory Elements for Circuit Applications

机译:一种用于构建电路应用内存元件的新型通用接口

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The rapid expansion of analog and neuromorphic memristive applications has proven that their reconfigurable and reprogrammable characteristics will be major proponents for pushing beyond Moore's Law. The lack of easily accessible and reliable solid-state memory elements (mem-elements) results in an ever-increasing body of the research lacking physical verification, and an associated high barrier to entry for researchers. This paper serves to fix this deficiency by introducing a novel universal interface circuit, which when connected to different peripheral circuits, can be used to build fundamental mem-elements. There is an abundance of mem-element emulators, we adopt their advantages into our design to foster practical and broadly applicable mem-element circuits. In comparison to other similar state-of-the-art emulators, our circuit utilized up to 42.9 fewer active components which consumed up to 31.9 less power with an associated reduction of size by 41.7. Our proposed emulator continues to operate with hysteresis at over 180 kHz, which is two orders of magnitude higher than other similar emulators and commercially available solid-state memristors, whilst maintaining floating terminal connections. Rigorous theoretical, simulation and experimental results are conducted with good agreement with applications given, demonstrating the ability of the universal interface to discretely build mem-elements.
机译:模拟和神经形态椎间膜膜的快速膨胀已经证明,其可重构和可重算的特征将是推动摩尔定律的主要支持者。缺乏易于访问和可靠的固态记忆元件(MEM-Elements)导致缺乏物理验证的研究的不断增加的身体,以及研究人员的相关高障碍。本文用于通过引入新颖的通用接口电路来解决此缺陷,该电路连接到不同的外围电路时,可用于构建基本的MEM元素。有丰富的MEM-EMENT仿真器,我们将其优势进入我们的设计,以促进实用和广泛适用的MEM元件电路。与其他类似的最先进的仿真器相比,我们的电路利用高达42.9的有源组件,该组件消耗多达31.9的功率,尺寸减少41.7。我们所提出的仿真器继续在超过180kHz的滞后操作,这是比其他类似仿真器和市售的固态忆阻器高的两个数量级,同时保持浮动端子连接。严格的理论,仿真和实验结果与给出的应用良好进行,展示了通用接口与离散地构建MEM元素的能力。

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