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模糊数据均值方法及应用研究 被引量:2
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作者 王忠玉 吴柏林 《统计与信息论坛》 CSSCI 2010年第10期13-17,共5页
提出一种"Zadeh"式模糊数据,并探讨这种模糊数据的模糊样本均值及其统计检验问题,给出模糊等于、模糊属于的定义,提出离散型和连续型模糊总体均值检验方法,并利用一些实例阐述了此类统计方法的应用。
关键词 模糊数据 模糊样本均值 模糊总体均值检验方法
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模糊数据的风险判别分析
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作者 张敬芝 郑文瑞 王汉林 《现代电子技术》 2007年第5期89-90,94,共3页
引入建立在模糊样本均值和方差基础上的模糊距离概念,借助文献[2]的思想对文献[1]的模糊判别分析给出了此判别的风险分析方法。
关键词 模糊样本均值 模糊样本协方差矩阵 模糊距离 判别风险
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Adaptive WNN aerodynamic modeling based on subset KPCA feature extraction 被引量:4
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作者 孟月波 邹建华 +1 位作者 甘旭升 刘光辉 《Journal of Central South University》 SCIE EI CAS 2013年第4期931-941,共11页
In order to accurately describe the dynamic characteristics of flight vehicles through aerodynamic modeling, an adaptive wavelet neural network (AWNN) aerodynamic modeling method is proposed, based on subset kernel pr... In order to accurately describe the dynamic characteristics of flight vehicles through aerodynamic modeling, an adaptive wavelet neural network (AWNN) aerodynamic modeling method is proposed, based on subset kernel principal components analysis (SKPCA) feature extraction. Firstly, by fuzzy C-means clustering, some samples are selected from the training sample set to constitute a sample subset. Then, the obtained samples subset is used to execute SKPCA for extracting basic features of the training samples. Finally, using the extracted basic features, the AWNN aerodynamic model is established. The experimental results show that, in 50 times repetitive modeling, the modeling ability of the method proposed is better than that of other six methods. It only needs about half the modeling time of KPCA-AWNN under a close prediction accuracy, and can easily determine the model parameters. This enables it to be effective and feasible to construct the aerodynamic modeling for flight vehicles. 展开更多
关键词 WAVELET neural network fuzzy C-means clustering kernel principal components analysis feature extraction aerodynamic modeling
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