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Perceptron Linear Activation Function Design with CMOS-Memristive Circuits

机译:具有CMOS忆阻电路的Perceptron线性激活功能设计

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In the last decade, the interest to emulate of the functionality and structure of the human brain to solve the problems related to image processing and pattern recognition, especially using to Artificial Neural Network (ANN), has significantly increased. The capability of ANN to perform at highspeed has been proven to be very useful for various large scale problems. One of the simple ANN models is perceptron. Since the perceptron is the basic form of a neural network, the efficient implementation of an activation functions is required to build the neural network on hardware. As various works introduce the design of sigmoid and tangent activation functions, most of the other activation functions remain an open research problem. This paper describes the design of the perception circuit with the linear activation function based on operational amplifier for memristive crossbar based neural networks. Additionally, the variation of performance with temperature and noise noise analysis of the circuit are presented.
机译:在过去的十年中,人们特别关注模拟人脑的功能和结构以解决与图像处理和模式识别有关的问题的兴趣,尤其是用于人工神经网络(ANN)的兴趣。事实证明,ANN的高速运行能力对于解决各种大规模问题非常有用。简单的ANN模型之一是感知器。由于感知器是神经网络的基本形式,因此需要有效实现激活功能才能在硬件上构建神经网络。随着各种作品介绍了S型和切线激活函数的设计,大多数其他激活函数仍然是一个未解决的研究问题。本文介绍了基于忆阻交叉开关的神经网络的基于运算放大器的线性激活功能感知电路的设计。此外,还介绍了电路性能随温度和噪声噪声分析的变化。

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