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电容压力传感器的函数链接型神经网络建模方法

Method for Modeling of Capacitor Pressure Sensor Using FLANN
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摘要 旨在开发一种计算简单的电容压力传感器的模型 ,以便经济、可靠地应用。分析表明 ,采用新型函数链接型神经网络建立的电容压力传感器模型 ,能够精确读出应用压力。它是一种能实现输入到输出的高度非线性映射并且运算高效的非线性网络 。 The prime aim of this paper is to develop a model of the capacitor pressure sensor involving less computational complexity, so that its implementation could be economical and robust. It is shown that a CPS can be modeled for accurate readout of applied pressure using a novel functional link artificial neural network. The proposed FLANN is a computationally efficient nonlinear network and is capable of complex nonlinear mapping between its input and output pattern space. The FLANN offers substantial computational advantage over a multiplayer perceptron for similar performance in modeling of the CPS.
作者 钱新 龚烈航
出处 《解放军理工大学学报(自然科学版)》 EI 2002年第3期60-63,共4页 Journal of PLA University of Science and Technology(Natural Science Edition)
关键词 函数链接型神经网络 电容压力传感器 多层感知器 运算复杂性 functional link artificial neural netwroks (FLANN) capacitor pressure sensor(CPS) multilayer perceptron(MLP) computational complexity
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参考文献3

  • 1PATRA J C. BOS A V D. Modeling of intelligent pressure sensor using functional link-artificial neural networks [J]. ISA Transactions. 2000.39:15-27.
  • 2陈国梁.神经网络及其应用[M].合肥:中国科学技术大学出版社,1992.
  • 3徐科军,殷铭.基于FLANN的腕力传感器动态建模方法[J].仪器仪表学报,2000,21(1):92-94. 被引量:28

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