首页> 外文会议>Cellular Nanoscale Networks and Their Applications (CNNA), 2010 >On the diffusion model for Autonomous Ratio-Memory Cellular Nonlinear Network for pattern recognition
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On the diffusion model for Autonomous Ratio-Memory Cellular Nonlinear Network for pattern recognition

机译:模式识别的自主比例记忆细胞非线性网络的扩散模型研究

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This paper proposes the diffusion circuit for Autonomous Ratio-Memory Cellular Nonlinear Networks (ARMCNNs). ARMCNNs can tolerate large variations of ratio weights which has been shown in our previous paper. However, in our previous circuit implementation, the synapse weight circuit between neighboring neurons was composed of two voltage to current converters (V/Is) and current mirrors. The layout area is still too large for a high density CNN array. Another issue is that for each subsystem of ARMCNNs, spurious memory points may exist besides two binary equilibrium points. The occurence of these spurious memory points will reduce the recognition rate (RR). So this paper proposes the diffusion circuit for synapse weights to extend the domain of attraction (DOA) and therefore eliminate these spurious memory points in comparison with our previous paper. In the literature, MOSFET transistors for the synapse weight circuit mostly either work in the weak inversion region, or in the strong inversion, but not both. Hence, the gate voltage has to be carefully desgined for MOSFET transistors working in the correct regions. On the contrary, in this paper, the synapse weight of a single MOSFET can work in either the weak inversion region or the strong inversion, making analog design more robust.
机译:本文提出了一种用于自治比率记忆细胞非线性网络(ARMCNN)的扩散电路。 ARMCNN可以容忍比率权重的较大变化,这在我们之前的论文中已经显示。但是,在我们以前的电路实现中,相邻神经元之间的突触加权电路由两个电压电流转换器(V / Is)和电流镜组成。对于高密度的CNN阵列,布局区域仍然太大。另一个问题是,对于ARMCNN的每个子系统,除了两个二进制平衡点之外,还可能存在虚假存储点。这些杂散存储点的出现将降低识别率(RR)。因此,本文提出了一种用于突触权重的扩散电路,以扩展吸引域(DOA),从而与我们以前的论文相比,消除了这些虚假的存储点。在文献中,用于突触加权电路的MOSFET晶体管大多在弱反转区域或强反转区域工作,但不能同时工作。因此,对于在正确区域工作的MOSFET晶体管,必须仔细设计栅极电压。相反,在本文中,单个MOSFET的突触权重既可以在弱反转区域也可以在强反转区域工作,从而使模拟设计更加稳健。

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