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X射线光谱与神经网络中单组分型神经群结构研究
引用本文:罗立强,郭常霖,马光祖,吉昂.X射线光谱与神经网络中单组分型神经群结构研究[J].光谱学与光谱分析,1999,19(3):426-429.
作者姓名:罗立强  郭常霖  马光祖  吉昂
作者单位:1. 国家地质实验测试中心,100037,北京
2. 中国科学院上海硅酸盐研究所,200050,上海
基金项目:中国科学院资助项目;;
摘    要:研究、比较了神经群结构与常规神经网络算法的预测性能,考察了过拟合与最佳拟合态等的关系。结果表明,在多元体系中,将神经网络单组分预测模型应用于X射线荧光光谱分析时,在预测准确度、模型稳定性和外推预测能力方面,神经群结构优于常规神经网络模型。

关 键 词:神经网络  X射线荧光光谱  神经群

Neural Cluster Structure with Single Component Prediction in Multiple Variable Systems for X-ray Fluorescence Spectrometry
Liqiang LUO,Changlin GUO,Guangzu MA,Ang JI.Neural Cluster Structure with Single Component Prediction in Multiple Variable Systems for X-ray Fluorescence Spectrometry[J].Spectroscopy and Spectral Analysis,1999,19(3):426-429.
Authors:Liqiang LUO  Changlin GUO  Guangzu MA  Ang JI
Institution:National Research Center of Geoanalysis, 100037 Beijing.
Abstract:A neural cluster structure with single component prediction (NCSCP) was proposed for X ray fluorescence spectrometry in a multivariable system.The neural cluster structure is built by the collection of a group of neurons which have close relationships among one another.In X ray fluorescence analysis,the structure is constructed by choosing the elements in which there exist serious matrix effects,and deleting the components containing large noise.The predictability of the neural cluster structure was compared with that of the classical backward error propagation algorithm with single component prediction.The results show that the nerual cluster structure is significantly superior to the classical algorithm in prediction accuracy,antidisturbance and the predictabilty to outliers.
Keywords:Neural networks    X  ray fluorescence spectrometry    Neural cluster structure
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