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Variability-Tolerant Memristor-based Ratioed Logic in Crossbar Array

机译:交叉开关阵列中基于变量的基于忆阻器的比例逻辑

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-based memristor in 2008 revived the scientific interest both from academia and industry for this device technology, with several emerging applications including that of logic circuits. Several memristive logic families have been proposed, each with different attributes, in the current quest for energy-efficient computing systems of the future. However, limited endurance of memristor devices and variations (both cycle-to-cycle and device-to-device) are important parameters to be considered in the evaluation of such logic families. In this work we build upon an accurate physics-based model of a bipolar metal-oxide resistive RAM device (supporting parasitics of the device structure and variability of switching voltages and resistance states) and use it to show how performance of memristor-based logic circuits can de degraded owing to both variability and state-drift impact. Based on previous work on CMOS-like memristive logic circuits, we propose a memristive ratioed logic scheme, which is crossbar-compatible, i.e. suitable for in-ear-memory computing, and tolerant to device variability, while also it does not affect the device endurance since computations do not involve switching the memristor states. As a figure of merit, we compare such new logic scheme with MAGIC, focusing on the universal NOR logic gate.
机译:于2008年成立的忆阻器重新激发了学术界和工业界对该器件技术的科学兴趣,并出现了包括逻辑电路在内的多种新兴应用。在当前对未来的节能计算系统的追求中,已经提出了几个忆阻逻辑系列,每个具有不同的属性。但是,忆阻器器件的耐久性和变化(周期到周期以及设备到设备)有限,是评估此类逻辑系列时要考虑的重要参数。在这项工作中,我们基于双极性金属氧化物电阻RAM器件的精确的基于物理的模型(支持器件结构的寄生效应以及开关电压和电阻状态的可变性),并使用它来展示基于忆阻器的逻辑电路的性能由于可变性和状态漂移影响,它可能会退化。基于以前对类似CMOS的忆阻逻辑电路所做的工作,我们提出了一种忆阻比例逻辑方案,该方案与交叉开关兼容,即适用于内存中/附近的计算,并且可以容忍设备的可变性,同时也不会影响器件的可变性。设备的耐用性,因为计算不涉及切换忆阻器状态。作为一项优点,我们将这种新的逻辑方案与MAGIC进行了比较,重点是通用NOR逻辑门。

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