用于细胞神经网络和模拟阵列功能评估的硬件和算法

K. R. Krieg, L. Chua
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引用次数: 1

摘要

模拟阵列是细胞神经网络(CNN)的一种推广,它由每个节点上的非线性模拟处理器的规则阵列和最近邻交互组成。模拟阵列可以在输入和输出函数中都包含非线性,并且与CNN阵列相比,在平衡状态下具有连续值输出。一般的模拟阵列,虽然比CNN更强大,但在功能测试上是一个噩梦。由于输出是连续值的(即使在平衡状态下),并且动态可能很复杂,因此评估制造的VLSI阵列是否符合大范围输入的预期处理功能可能非常困难且耗时。模拟输入和输出的数量也使大多数现代模拟VLSI自动测试设备(ATE)紧张。作者提出了一种新的用于大规模模拟电路测试的硬件设计和用于模拟阵列功能测试的算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hardware and algorithms for the functional evaluation of cellular neural networks and analog arrays
Analog arrays are a generalization of cellular neural networks (CNN) which consist of a regular array of nonlinear analog processors at each node and nearest neighbor interactions. Analog arrays can incorporate nonlinearities in both the input and output functions and, contrasted with CNN arrays, have continuous-valued outputs in the equilibrium state. The general analog array, though more powerful than the CNN, presents a functional test nightmare. Since the output is continuous-valued (even at equilibrium) and the dynamics can be complicated, evaluating whether a fabricated VLSI array complies with the intended processing function for a wide range of inputs can be very difficult and time consuming. The number of analog inputs and outputs also strains most modern analog VLSI automatic test equipment (ATE). The authors present both a new hardware design for massive analog circuit testing and algorithms for functional test of analog arrays.<>
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