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System-Theoretic Methods for Designing Bio-Inspired Mem-Computing Memristor Cellular Nonlinear Networks

机译:用于设计生物启发的MEM-COMPISTOR蜂窝非线性网络的系统 - 理论方法

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摘要

The introduction of nano-memristors in electronics may allow to boost the performance of integrated circuits beyond the Moore era, especially in view of their extraordinary capability to process and store data in the very same physical volume. However, recurring to nonlinear system theory is absolutely necessary for the development of a systematic approach to memristive circuit design. In fact, the application of linear system-theoretic techniques is not suitable to explore thoroughly the rich dynamics of resistance switching memories, and designing circuits without a comprehensive picture of the nonlinear behaviour of these devices may lead to the realization of technical systems failing to operate as desired. Converting traditional circuits to memristive equivalents may require the adaptation of classical methods from nonlinear system theory. This paper extends the theory of time- and space-invariant standard cellular nonlinear networks with first-order processing elements for the case where a single non-volatile memristor is inserted in parallel to the capacitor in each cell. A novel nonlinear system-theoretic method allows to draw a comprehensive picture of the dynamical phenomena emerging in the memristive mem-computing array, beautifully illustrated in the so-called Primary Mosaic for the class of uncoupled memristor cellular nonlinear networks. Employing this new analysis tool it is possible to elucidate, with the support of illustrative examples, how to design variability-tolerant bio-inspired cellular nonlinear networks with second-order memristive cells for the execution of computing tasks or of memory operations. The capability of the class of memristor cellular nonlinear networks under focus to store and process information locally, without the need to insert additional memory units in each cell, may allow to increase considerably the spatial resolution of state-of-the-art purely CMOS sensor-processor arrays. This is of great appeal for edge computing applications, especially since the Internet-of-Things industry is currently calling for the realization of miniaturized, lightweight, low-power, and high-speed mem-computers with sensing capability on board.
机译:电子引入纳米忆阻器的可允许提高集成电路的性能超越了摩尔时代,尤其是考虑到其非凡的能力,以处理和存储数据非常相同的物理卷。然而,经常以非线性系统理论是一个系统的方法来记忆电阻电路设计的发展绝对必要的。事实上,线性系统理论技术的应用是不适合深入探讨的电阻开关记忆的丰富的动态,并设计电路没有这些器件的非线性行为的全貌可能导致实现技术系统无法操作的如预期的。将传统电路以忆阻当量可能需要从非线性系统理论的经典方法的改编。本文扩展与其中单个非易失性忆阻器被插入在平行于每个单元中的电容器的情况下的一阶处理元件时间和空间不变标准蜂窝网络的非线性的理论。一种新型的非线性系统论的方法允许绘制的动力学现象出现的忆阻MEM计算阵列,在所谓的主马赛克精美所示,对于类非耦合忆阻器蜂窝非线性网络在一个全面的了解。采用这种新的分析工具,可以阐明,与之相配套的说明性的例子,如何设计变异容错仿生细胞非线性的二阶忆阻细胞网络的计算任务或存储操作的执行。类下焦点来存储和处理信息的本地忆阻器蜂窝非线性网络,而不需要在每个小区中插入额外的存储单元的能力时,可以允许显着地提高的状态的最先进的纯粹CMOS传感器的空间分辨率-processor阵列。这是边缘计算应用极大的吸引力,特别是由于互联网的,事物的行业目前要求实现小型化,轻量化,低功耗,并与船上感知能力高速MEM的计算机。

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