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FIR带通滤波器优化设计研究
引用本文:陈越,张小兵. FIR带通滤波器优化设计研究[J]. 电气电子教学学报, 2003, 25(1): 40-42,48
作者姓名:陈越  张小兵
作者单位:1. 湖南生物与电机工程职业技术学院,湖南,长沙,410126
2. 湖南师范大学,湖南,长沙,410012
摘    要:提出了一种基于BP学习算法的正弦基函数神经网络模型,给出了该社会网络模型的收敛性条件,为社会网络训练的学习效率选取提供了依据。根据本文提出的优化设计算法,作者详细研究了FIR线性相位带通滤波器优化设计实例,研究结果表明,本文设计的FIR带通滤波器,基阻带衰耗特性好,最小衰耗分别在100分贝和140分贝以上,这是任何其它优化设计方法难以实现的,研究结果表明了本文提出的基于BP算法的正弦基神经网络模型是一种有效的神经网络模型。

关 键 词:FIR 带通滤波器 正弦基函数社会网络 收敛性 优化设计 BP学习算法
文章编号:1008-0686(2003)01-0040-04

Optimal Design Study about the FIR Band-Pass Filters
CHEN Yue ,ZHANG Xiao bing. Optimal Design Study about the FIR Band-Pass Filters[J]. Journal of Electrical & Electronic Engineering Education, 2003, 25(1): 40-42,48
Authors:CHEN Yue   ZHANG Xiao bing
Affiliation:CHEN Yue 1,ZHANG Xiao bing 2
Abstract:This paper presents the model of sine basis functions nerual networks based on BP learning algorithm, and offers the convergence condition of the neural networks algorithm. The convergence condition provides the evidence for selecting learning ratio in traning neural networks. Author studies in detail the optimal design examples about the FIR band pass filters with a linear phase according to the optimal design algorithm presented in the paper. The study results show that the attenuation performance of the stop band of the FIR band pass filters designed in the paper is excellent, which is over 100dB and 140dB respectively. The neural network algorithem is not only effective, but also better than other optimal algorithms.
Keywords:sine basis function neural netowks  convergence  band pass filters  optimal design
本文献已被 CNKI 维普 万方数据 等数据库收录!
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