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自适应小波分类网络在充油电力设备故障识别中的应用 被引量:9
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作者 高文胜 高宁 严璋 《电工技术学报》 EI CSCD 北大核心 1998年第6期54-58,共5页
本文针对电力设备故障诊断的特点,提出了一种用于高维数据分析的小波分类网络(WaveletClassificationNetwork,简称WCN),并结合具体应用研究了提高网络推广能力和抗噪性能的方法。实例检验结果证明... 本文针对电力设备故障诊断的特点,提出了一种用于高维数据分析的小波分类网络(WaveletClassificationNetwork,简称WCN),并结合具体应用研究了提高网络推广能力和抗噪性能的方法。实例检验结果证明了该网络应用的有效性。 展开更多
关键词 电力设备 绝缘油 故障识别 小波分类网络
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A novel internet traffic identification approach using wavelet packet decomposition and neural network 被引量:7
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作者 谭骏 陈兴蜀 +1 位作者 杜敏 朱锴 《Journal of Central South University》 SCIE EI CAS 2012年第8期2218-2230,共13页
Internet traffic classification plays an important role in network management, and many approaches have been proposed to classify different kinds of internet traffics. A novel approach was proposed to classify network... Internet traffic classification plays an important role in network management, and many approaches have been proposed to classify different kinds of internet traffics. A novel approach was proposed to classify network applications by optimized back-propagation (BP) neural network. Particle swarm optimization (PSO) algorithm was used to optimize the BP neural network. And in order to increase the identification performance, wavelet packet decomposition (WPD) was used to extract several hidden features from the time-frequency information of network traffic. The experimental results show that the average classification accuracy of various network applications can reach 97%. Moreover, this approach optimized by BP neural network takes 50% of the training time compared with the traditional neural network. 展开更多
关键词 neural network particle swarm optimization statistical characteristic traffic identification wavelet packet decomposition
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