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水罗伞的生药学研究 被引量:9
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作者 戴斌 丘翠嫦 +1 位作者 陈少锋 周丽娜 《中草药》 CAS CSCD 北大核心 2001年第5期456-459,共4页
目的 查清广西壮、瑶医常用药材水罗伞的植物来源及鉴别特征。方法 植物形态分类学及中药鉴定学常规方法技术。结果 水罗伞为干花豆 Fordia cauliflora的根 ,其植物形态及药材性状、显微组织、紫外光谱和薄层色谱有其特有的鉴别特征。
关键词 水罗伞 干花豆 生经鉴定 民族医药
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Classification and Identification of Nuclear, Biological or Chemical Agents Taken from Remote Sensing Image by Using Neural Network
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作者 Said El Yamani Samir Zeriouh Mustapha Boutahri Ahmed Roukhe 《Journal of Physical Science and Application》 2014年第3期177-182,共6页
In the context of new risks and threats associated to nuclear, biological and chemical (NBC) attacks, and given the shortcomings of certain analytical methods such as principal component analysis (PCA), a neural n... In the context of new risks and threats associated to nuclear, biological and chemical (NBC) attacks, and given the shortcomings of certain analytical methods such as principal component analysis (PCA), a neural network approach seems to be more accurate. PCA consists in projecting the spectrum of a gas collected from a remote sensing system in, firstly, a three-dimensional space, then in a two-dimensional one using a model of Multi-Layer Perceptron based neural network. It adopts during the learning process, the back propagation algorithm of the gradient, in which the mean square error output is continuously calculated and compared to the input until it reaches a minimal threshold value. This aims to correct the synaptic weights of the network. So, the Artificial Neural Network (ANN) tends to be more efficient in the classification process. This paper emphasizes the contribution of the ANN method in the spectral data processing, classification and identification and in addition, its fast convergence during the back propagation of the gradient. 展开更多
关键词 Artificial neural networks classification identification principal component analysis multi-layer perceptron back propagation of the gradient.
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