首页> 外文会议>International Conference on Computational Science(ICCS 2006) pt.4; 20060528-31; Reading(GB) >Neural Network Based MOS Transistor Geometry Decision for TSMC 0.18μ Process Technology
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Neural Network Based MOS Transistor Geometry Decision for TSMC 0.18μ Process Technology

机译:TSMC0.18μ工艺技术的基于神经网络的MOS晶体管几何决策

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In sub-micron technologies MOSFETs are modeled by complex nonlinear equations. These equations include many process parameters, terminal voltages of the transistor and also the transistor geometries; channel width (W) and length (L) parameters. The designers have to choose the most suitable transistor geometries considering the critical parameters, which determine the DC and AC characteristics of the circuit. Due to the difficulty of solving these complex nonlinear equations, the choice of appropriate geometry parameters depends on designer's knowledge and experience. This work aims to develop a neural network based MOSFET model to find the most suitable channel parameters for TSMC 0.18μ technology, chosen by the circuit designer. The proposed model is able to find the channel parameters using the input information, which are terminal voltages and the drain current. The training data are obtained by various simulations in the HSPICE design environment with TSMC 0.18μm process nominal parameters. The neural network structure is developed and trained in the MATLAB 6.0 program. To observe the utility of proposed MOSFET neural network model it is tested through two basic integrated circuit blocks.
机译:在亚微米技术中,MOSFET是通过复杂的非线性方程式建模的。这些方程式包括许多工艺参数,晶体管的端电压以及晶体管的几何形状。通道宽度(W)和长度(L)参数。设计人员必须考虑关键参数来选择最合适的晶体管几何形状,这些参数决定了电路的DC和AC特性。由于难以求解这些复杂的非线性方程,因此选择合适的几何参数取决于设计人员的知识和经验。这项工作旨在开发一种基于神经网络的MOSFET模型,以找到电路设计师选择的最适合TSMC0.18μ技术的通道参数。所提出的模型能够使用输入信息找到沟道参数,这些信息是端子电压和漏极电流。训练数据是通过在HSPICE设计环境中采用台积电0.18μm工艺标称参数的各种模拟获得的。神经网络结构是在MATLAB 6.0程序中开发和训练的。为了观察所提出的MOSFET神经网络模型的效用,通过两个基本集成电路模块对其进行了测试。

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