• 提出一种基于分析(KPCA)多级神经网络集成汽轮机故障诊断方法

    One new method for fault diagnosis of steam turbine based on kernel principal component analysis (KPCA) and multistage neural network ensemble was proposed.

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  • 为此提出多向分析(MKPCA)算法用于间歇过程建模与在线监测。

    A method based on multiway kernel principal component analysis (MKPCA) was proposed to capture the nonlinear characteristics of normal batch processes.

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  • 结合核主元分析支持向量特点提出一种基于核主元分析与支持向量机的人脸识别方法

    By integrating the characteristics of KPCA and SVM, a face recognition method based on these two algorithms is presented.

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  • 具体分析了多种建模方法基础上,提出元分析结合最小支持向量测量建模方法。

    On the basis of analysis of several methods for modeling, a soft sensor based on kernel principal component analysis (KPCA) and least square support vector machine (LSSVM) is proposed.

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  • 该方法首先利用元分析人脸图像进行特征提取然后依据支持向量近邻准则提取主元特征进行分类识别。

    Firstly KPCA is used to extract the features of human face image, and then SVM combined with the nearest distance rule is used for classification, which depends on the kernel principal components.

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  • 要内容如下:对基于分析的方法进行综合研究故障检测、故障诊断、故障重构以及基于核主元分析的故障检测方法。

    Completed work is summarized as following: The paper gives a integrated research based on PCA from fault detection, fault diagnosis, reconstruction fault to a new fault detection method based on KPCA.

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  • 建立Fisher判别函数优化目标适应度利用粒子群算法中多个随机粒子实现函数参数的优化改善核主元分析方法的性能

    Firstly, it constructs a fitness function which Fisher discriminate function is optimized object, then WCPSO is used to optimize it by its many random particles to improve the performance of KPCA.

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  • 训练阶段-分析用来捕捉非线性手写变化

    In the training phase, kernel principal component analysis is used to capture nonlinear handwriting variations.

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  • 训练阶段,-分析用来捕捉非线性手写变化。

    The nonlinear components of gait features are extracted based on kernel principal component analysis (KPCA).

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  • 提出基于函数分析齿轮故障诊断方法

    An approach to gear fault diagnosis is presented, which bases on kernel principal component analysis (KPCA).

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  • 统计过程介绍三种要的方法分析最小二乘法函数概率密度估计法

    About multivariate statistical process, three methods are introduced: Principal Component Analysis, Partial Least Squares, Kernel Density Estimation.

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  • 统计过程介绍三种要的方法分析最小二乘法函数概率密度估计法

    About multivariate statistical process, three methods are introduced: Principal Component Analysis, Partial Least Squares, Kernel Density Estimation.

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