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基于Cross-Validation的小波自适应去噪方法 被引量:4
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作者 黄文清 戴瑜兴 李加升 《湖南大学学报(自然科学版)》 EI CAS CSCD 北大核心 2008年第11期40-43,共4页
小波去噪算法中,阈值的选择非常关键.提出一种自适应阈值选择算法.该算法先通过Cross-Validation方法将噪声干扰信号分成两个子信号,一个用于阈值处理,一个用作参考信号;再采用最深梯度法来寻求一个最优去噪阈值.仿真和实验结果表明:在... 小波去噪算法中,阈值的选择非常关键.提出一种自适应阈值选择算法.该算法先通过Cross-Validation方法将噪声干扰信号分成两个子信号,一个用于阈值处理,一个用作参考信号;再采用最深梯度法来寻求一个最优去噪阈值.仿真和实验结果表明:在均方误差意义上,所提算法去噪效果优于Donoho等提出的VisuShrink和SureShrink两种去噪算法,且不需要带噪信号的任何'先验信息',适应于实际信号去噪处理. 展开更多
关键词 小波变换 cross-validation 自适应滤波 阈值
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基于gBLUP方法及Cross-validation大豆表型精准预测研究 被引量:1
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作者 唐友 郑萍 张继成 《青岛大学学报(自然科学版)》 CAS 2017年第1期56-59,共4页
为了实现提高产量和抵抗病害等能力的目的,需要提高育种水平,通过设计交差验证(Cross-Validation)实验进行大豆基因型和表型数据的分组处理,根据数据的个体和mark的数量进行合理分配,采用gBLUP(genomic Best Linear Unbiased Prediction... 为了实现提高产量和抵抗病害等能力的目的,需要提高育种水平,通过设计交差验证(Cross-Validation)实验进行大豆基因型和表型数据的分组处理,根据数据的个体和mark的数量进行合理分配,采用gBLUP(genomic Best Linear Unbiased Prediction)方法进行表型预测。根据对大豆数据多个性状通过不同分组的对比来得到精确值的范围,为后续的育种分析提供依据。对于只有大豆基因型数据而没有表型数据的情况,需要模拟表型,根据设定遗传力和模拟位点的个数(NQTN)进行模拟,然后再进行不同分组获取精准值,这样扩大了大豆数据的预测灵活性。 展开更多
关键词 交叉验证 表型预测 gBLUP 遗传力
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基于Cross-Validation的电机故障诊断振动数据处理方法 被引量:6
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作者 王惠中 乔林翰 +1 位作者 贺珂珂 段洁 《自动化仪表》 CAS 2018年第4期22-25,共4页
针对牵引电机故障诊断研究中所采用的神经网络方法,提出在模型训练阶段引入K折交叉验证。该方法在划分训练集与测试集期间,使验证集能够遍历所有数据集,从多方向开始学习,从而在一定程度上避免了局部极小的问题。训练完成后,以神经网络... 针对牵引电机故障诊断研究中所采用的神经网络方法,提出在模型训练阶段引入K折交叉验证。该方法在划分训练集与测试集期间,使验证集能够遍历所有数据集,从多方向开始学习,从而在一定程度上避免了局部极小的问题。训练完成后,以神经网络作为分类器进行故障识别。神经网络学习算法采用随机梯度下降的方法,每次投入一组数据集进行训练,大大提高了训练速度。Eclipse+Anaconda仿真结果证明:与传统神经网络电机故障诊断方法相比,该方法可以在一定程度上避免过拟合现象,同时避免局部极小。此外,在Matlab环境下,单独比较支持向量机采用交叉验证前后的故障分类效果。对比结果表明:交叉验证方法从多方向开始学习,对于提升故障诊断的准确率有较好作用。 展开更多
关键词 电机故障诊断 K折交叉验证 随机梯度下降 神经网络 拟合 支持向量机
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非参数回归的L_1-Cross-Validation最近邻中位数估计的强相合性
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作者 郑忠国 杨瑛 《甘肃科学学报》 1993年第3期14-19,共6页
考虑非参数回归模型Y<sub>i</sub>=g(x<sub>i</sub>)+e<sub>i</sub>,i≥1,其中g(x)是待估计的连续函数,{x<sub>i</sub>,i≥1}是非随机的,{e<sub>i</sub>,i≥1}是iid... 考虑非参数回归模型Y<sub>i</sub>=g(x<sub>i</sub>)+e<sub>i</sub>,i≥1,其中g(x)是待估计的连续函数,{x<sub>i</sub>,i≥1}是非随机的,{e<sub>i</sub>,i≥1}是iid随机误差,在本文中,我们讨论最近邻中位数估计(x)=m(Y<sub>(i(1)),…,Y<sub>i(h<sup>*</sup>)</sub></sub>=Yi(1),…,Y<sub>i(h<sup>*</sup>)</sub>之中位数,其中h<sup>*</sup>利用L<sub>1</sub>—Cross—Validation方法选择,在一定条件下,建立了L<sub>1</sub>—Cross—Validation最近邻中位数估计的强相合性。 展开更多
关键词 L1crossvalidation 非参数回归 最近邻中位数估计
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非参数回归的L_1-cross-validation最近邻估计的强相合性
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作者 杨瑛 《甘肃农业大学学报》 CAS CSCD 1993年第2期150-154,共5页
考虑非参数回归模型:Y_i=g(x_i)+e_i,i≥1,其中g是待估计的连续函数,{x_i,i≥1}是非随机的,{e_i,i≥1)是iid随机误差。在本文中,我们讨论最近邻估计g_(n,h)(x)=1/h∑Y_(R_(i,x)^(n)),其中h利用L_1-cross-validation方法选择,在一定条件... 考虑非参数回归模型:Y_i=g(x_i)+e_i,i≥1,其中g是待估计的连续函数,{x_i,i≥1}是非随机的,{e_i,i≥1)是iid随机误差。在本文中,我们讨论最近邻估计g_(n,h)(x)=1/h∑Y_(R_(i,x)^(n)),其中h利用L_1-cross-validation方法选择,在一定条件下,证明了L_1-cross-validation最近邻估计的强相合性。 展开更多
关键词 最近邻估计 强相合性 非参数回归
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Fast cross validation for regularized extreme learning machine 被引量:9
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作者 Yongping Zhao Kangkang Wang 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2014年第5期895-900,共6页
A method for fast 1-fold cross validation is proposed for the regularized extreme learning machine (RELM). The computational time of fast l-fold cross validation increases as the fold number decreases, which is oppo... A method for fast 1-fold cross validation is proposed for the regularized extreme learning machine (RELM). The computational time of fast l-fold cross validation increases as the fold number decreases, which is opposite to that of naive 1-fold cross validation. As opposed to naive l-fold cross validation, fast l-fold cross validation takes the advantage in terms of computational time, especially for the large fold number such as l 〉 20. To corroborate the efficacy and feasibility of fast l-fold cross validation, experiments on five benchmark regression data sets are evaluated. 展开更多
关键词 extreme learning machine (ELM) regularization theory cross validation neural networks.
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Efficient strategies for leave-one-out cross validation for genomic best linear unbiased prediction 被引量:3
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作者 Hao Cheng Dorian J.Garrick Rohan L.Fernando 《Journal of Animal Science and Biotechnology》 SCIE CAS CSCD 2017年第3期733-737,共5页
Background: A random multiple-regression model that simultaneously fit all allele substitution effects for additive markers or haplotypes as uncorrelated random effects was proposed for Best Linear Unbiased Predictio... Background: A random multiple-regression model that simultaneously fit all allele substitution effects for additive markers or haplotypes as uncorrelated random effects was proposed for Best Linear Unbiased Prediction, using whole-genome data. Leave-one-out cross validation can be used to quantify the predictive ability of a statistical model.Methods: Naive application of Leave-one-out cross validation is computationally intensive because the training and validation analyses need to be repeated n times, once for each observation. Efficient Leave-one-out cross validation strategies are presented here, requiring little more effort than a single analysis.Results: Efficient Leave-one-out cross validation strategies is 786 times faster than the naive application for a simulated dataset with 1,000 observations and 10,000 markers and 99 times faster with 1,000 observations and 100 markers. These efficiencies relative to the naive approach using the same model will increase with increases in the number of observations.Conclusions: Efficient Leave-one-out cross validation strategies are presented here, requiring little more effort than a single analysis. 展开更多
关键词 Leave-one-out cross validation GBLUP
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Cross-Validation, Shrinkage and Variable Selection in Linear Regression Revisited 被引量:3
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作者 Hans C. van Houwelingen Willi Sauerbrei 《Open Journal of Statistics》 2013年第2期79-102,共24页
In deriving a regression model analysts often have to use variable selection, despite of problems introduced by data- dependent model building. Resampling approaches are proposed to handle some of the critical issues.... In deriving a regression model analysts often have to use variable selection, despite of problems introduced by data- dependent model building. Resampling approaches are proposed to handle some of the critical issues. In order to assess and compare several strategies, we will conduct a simulation study with 15 predictors and a complex correlation structure in the linear regression model. Using sample sizes of 100 and 400 and estimates of the residual variance corresponding to R2 of 0.50 and 0.71, we consider 4 scenarios with varying amount of information. We also consider two examples with 24 and 13 predictors, respectively. We will discuss the value of cross-validation, shrinkage and backward elimination (BE) with varying significance level. We will assess whether 2-step approaches using global or parameterwise shrinkage (PWSF) can improve selected models and will compare results to models derived with the LASSO procedure. Beside of MSE we will use model sparsity and further criteria for model assessment. The amount of information in the data has an influence on the selected models and the comparison of the procedures. None of the approaches was best in all scenarios. The performance of backward elimination with a suitably chosen significance level was not worse compared to the LASSO and BE models selected were much sparser, an important advantage for interpretation and transportability. Compared to global shrinkage, PWSF had better performance. Provided that the amount of information is not too small, we conclude that BE followed by PWSF is a suitable approach when variable selection is a key part of data analysis. 展开更多
关键词 cross-validation LASSO SHRINKAGE SIMULATION STUDY VARIABLE SELECTION
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Handwriting Classification Based on Support Vector Machine with Cross Validation 被引量:4
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作者 Anith Adibah Hasseim Rubita Sudirman Puspa Inayat Khalid 《Engineering(科研)》 2013年第5期84-87,共4页
Support vector machine (SVM) has been successfully applied for classification in this paper. This paper discussed the basic principle of the SVM at first, and then SVM classifier with polynomial kernel and the Gaussia... Support vector machine (SVM) has been successfully applied for classification in this paper. This paper discussed the basic principle of the SVM at first, and then SVM classifier with polynomial kernel and the Gaussian radial basis function kernel are choosen to determine pupils who have difficulties in writing. The 10-fold cross-validation method for training and validating is introduced. The aim of this paper is to compare the performance of support vector machine with RBF and polynomial kernel used for classifying pupils with or without handwriting difficulties. Experimental results showed that the performance of SVM with RBF kernel is better than the one with polynomial kernel. 展开更多
关键词 SUPPORT VECTOR MACHINE HANDWRITING DIFFICULTIES cross-validation
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Validation method for simulation models with cross iteration
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作者 FANG Ke ZHAO Kaibin ZHOU Yuchen 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2019年第3期555-563,共9页
Cross iteration often exists in the computational process of the simulation models, especially for control models. There is a credibility defect tracing problem in the validation of models with cross iteration. In ord... Cross iteration often exists in the computational process of the simulation models, especially for control models. There is a credibility defect tracing problem in the validation of models with cross iteration. In order to resolve this problem, after the problem formulation, a validation theorem on the cross iteration is proposed, and the proof of the theorem is given under the cross iteration circumstance. Meanwhile, applying the proposed theorem, the credibility calculation algorithm is provided, and the solvent of the defect tracing is explained. Further, based on the validation theorem on the cross iteration, a validation method for simulation models with the cross iteration is proposed, which is illustrated by a flowchart step by step. Finally, a validation example of a sixdegree of freedom (DOF) flight vehicle model is provided, and the validation process is performed by using the validation method. The result analysis shows that the method is effective to obtain the credibility of the model and accomplish the defect tracing of the validation. 展开更多
关键词 validation METHOD simulation model cross ITERATION validation THEOREM validation EXAMPLE
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一种基于Cross-Validation的盲图像恢复方法 被引量:1
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作者 康云 《测绘学院学报》 北大核心 2004年第4期259-261,265,共4页
图像盲复原所面临的主要问题是可利用的信息不足,目前已有的图像盲复原算法一般都是有先验知识,如非负和有限支持域的限制。但在实际中目标的支持域是未知的。文中介绍了CV(cross validation)的基本原理,给出了一种基于CV原理的支持域... 图像盲复原所面临的主要问题是可利用的信息不足,目前已有的图像盲复原算法一般都是有先验知识,如非负和有限支持域的限制。但在实际中目标的支持域是未知的。文中介绍了CV(cross validation)的基本原理,给出了一种基于CV原理的支持域确定方法的详细步骤;并针对计算大的问题提出了一定的改进。最后给出了实验结果,证明CV确定支持域的方法对于图像盲复原是有一定价值的。 展开更多
关键词 图像盲复原 点扩散函数 CV(交叉确定)
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Revisiting Akaike’s Final Prediction Error and the Generalized Cross Validation Criteria in Regression from the Same Perspective: From Least Squares to Ridge Regression and Smoothing Splines
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作者 Jean Raphael Ndzinga Mvondo Eugène-Patrice Ndong Nguéma 《Open Journal of Statistics》 2023年第5期694-716,共23页
In regression, despite being both aimed at estimating the Mean Squared Prediction Error (MSPE), Akaike’s Final Prediction Error (FPE) and the Generalized Cross Validation (GCV) selection criteria are usually derived ... In regression, despite being both aimed at estimating the Mean Squared Prediction Error (MSPE), Akaike’s Final Prediction Error (FPE) and the Generalized Cross Validation (GCV) selection criteria are usually derived from two quite different perspectives. Here, settling on the most commonly accepted definition of the MSPE as the expectation of the squared prediction error loss, we provide theoretical expressions for it, valid for any linear model (LM) fitter, be it under random or non random designs. Specializing these MSPE expressions for each of them, we are able to derive closed formulas of the MSPE for some of the most popular LM fitters: Ordinary Least Squares (OLS), with or without a full column rank design matrix;Ordinary and Generalized Ridge regression, the latter embedding smoothing splines fitting. For each of these LM fitters, we then deduce a computable estimate of the MSPE which turns out to coincide with Akaike’s FPE. Using a slight variation, we similarly get a class of MSPE estimates coinciding with the classical GCV formula for those same LM fitters. 展开更多
关键词 Linear Model Mean Squared Prediction Error Final Prediction Error Generalized cross validation Least Squares Ridge Regression
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ON THE CONSISTENCY OF CROSS-VALIDATIONIN NONLINEAR WAVELET REGRESSION ESTIMATION
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作者 张双林 郑忠国 《Acta Mathematica Scientia》 SCIE CSCD 2000年第1期1-11,共11页
For the nonparametric regression model Y-ni = g(x(ni)) + epsilon(ni)i = 1, ..., n, with regularly spaced nonrandom design, the authors study the behavior of the nonlinear wavelet estimator of g(x). When the threshold ... For the nonparametric regression model Y-ni = g(x(ni)) + epsilon(ni)i = 1, ..., n, with regularly spaced nonrandom design, the authors study the behavior of the nonlinear wavelet estimator of g(x). When the threshold and truncation parameters are chosen by cross-validation on the everage squared error, strong consistency for the case of dyadic sample size and moment consistency for arbitrary sample size are established under some regular conditions. 展开更多
关键词 CONSISTENCY cross-validation nonparametric regression THRESHOLD TRUNCATION wavelet estimator
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在核非参数回归中Cross Validation的渐近最优性
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作者 何仲洛 《湖州师专学报》 1991年第6期1-16,共16页
给定Y<sub>i</sub>=f(t<sub>i</sub>)+ε<sub>i</sub>,i=1,2,…,n,令f<sub>n</sub>(t<sub>j</sub>λ<sup>*</sup>)是回归函数f(t)的核估计并且λ<su... 给定Y<sub>i</sub>=f(t<sub>i</sub>)+ε<sub>i</sub>,i=1,2,…,n,令f<sub>n</sub>(t<sub>j</sub>λ<sup>*</sup>)是回归函数f(t)的核估计并且λ<sup>*</sup>是窗宽基于均方预测误差的Cross—Validation选择.在较弱的矩的条件E<sub>ε<sub>i</sub></sub><sup>2</sup>【∞下,我们研究了f<sub>n</sub>(t<sub>i</sub>λ<sup>*</sup>)的藉助于均方误差的强相合性以及渐近最优性. 展开更多
关键词 回归函数 核估计 非参数 C-V选择
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Conformal Multi-resolution Time-Domain Method for Scattering Curved Dielectric Objects 被引量:1
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作者 朱敏 曹群生 王毅 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI 2014年第3期269-273,共5页
A conformal multi-resolution time-domain( CMRTD) method is presented for modeling curved objects. The effective dielectric constant and area weighting are used to derive the update equations of CMRTD. The backward sca... A conformal multi-resolution time-domain( CMRTD) method is presented for modeling curved objects. The effective dielectric constant and area weighting are used to derive the update equations of CMRTD. The backward scattering bistatic radar cross sections( RCS) of the dielectric cylinder and ellipsoid are used to validate the proposed method. The results show that the proposed conformal method is more accurate to deal with the complex curved objects in electromagnetic simulations. 展开更多
关键词 conformal multi-resolution time-domain(CMRTD) curved objects radar cross sections(RCS)
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Short Form of Weinstein Noise Sensitivity Scale(NSS-SF): Reliability, Validity and Gender Invariance among Chinese Individuals 被引量:1
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作者 ZHONG Tao CHUNG Pak-kwong LIU Jing Dong 《Biomedical and Environmental Sciences》 SCIE CAS CSCD 2018年第2期97-105,共9页
Objective Independent from noise exposure, noise sensitivity plays a pivotal role in people's noise annoyance perception and concomitant health deteriorations. The present study empirically investigated the psychomet... Objective Independent from noise exposure, noise sensitivity plays a pivotal role in people's noise annoyance perception and concomitant health deteriorations. The present study empirically investigated the psychometric properties of the Chinese version of the Weinstein Noise Sensitivity Scale-Short Form (CNSS-SF), the widely used inventory measuring individual differences in noise perception.Methods In total, 373 Chinese participants (age = 21.41 ± 3.36) completed the online, anonymous questionnaire package. Examination of the CNSS-SF's reliability (internal consistency), factorial validity through validation and cross-validation, nomological validity and measurement invariance across gender groups were undertaken.Results The Cronbach alpha coefficients and composite reliabilities indicated sufficient reliability of the CNSS-SF. Two confirmatory factor analyses (CFA), in two randomly partitioned groups of participants, substantiated the factorial validity of the scale. The nomological validity of the scale was also corroborated by the significant positive association of its score with the trait anxiety score. Measurement invariance of the CNSS-SF was also found across genders via multi-group CFA.Conclusion Though not without limitations, findings from the present research provide promising evidence for the utility of the scale in measuring noise sensitivity among the Chinese population. The availability of the CNSS-SF can promote research related to environmental noise and health in China, as well as facilitate cross-cultural comparisons. 展开更多
关键词 Environmental noise Individual differences cross-cultural validation Measurement PUBLICHEALTH
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A leap-frog discontinuous Galerkin time-domain method of analyzing electromagnetic scattering problems
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作者 崔学武 杨峰 +3 位作者 周龙建 高敏 闫飞 梁志鹏 《Chinese Physics B》 SCIE EI CAS CSCD 2017年第10期205-212,共8页
Several major challenges need to be faced for efficient transient multiscale electromagnetic simulations, such as flex- ible and robust geometric modeling schemes, efficient and stable time-stepping algorithms, etc. F... Several major challenges need to be faced for efficient transient multiscale electromagnetic simulations, such as flex- ible and robust geometric modeling schemes, efficient and stable time-stepping algorithms, etc. Fortunately, because of the versatile choices of spatial discretization and temporal integration, a discontinuous Galerkin time-domain (DGTD) method can be a very promising method of solving transient multiscale electromagnetic problems. In this paper, we present the application of a leap-frog DGTD method to the analyzing of the multiscale electromagnetic scattering problems. The uniaxial perfect matching layer (UPML) truncation of the computational domain is discussed and formulated in the leap-frog DGTD context. Numerical validations are performed in the challenging test cases demonstrating the accuracy and effectiveness of the method in solving transient multiscale electromagnetic problems compared with those of other numerical methods. 展开更多
关键词 discontinuous Galerkin time-domain simulation radar cross section
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基于V-foldCross-validation和Elman神经网络的信用评价研究 被引量:20
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作者 吴德胜 梁樑 《系统工程理论与实践》 EI CSCD 北大核心 2004年第4期92-98,共7页
 研究了关于公司信用评估问题的现状,指出一般神经网络应用于信用评估领域的不足.在此基础上,提出一套甄选原则以选择关键的信用评分指标;然后依据这些指标建立了基于Elman回归神经网络的我国企业的信用评估模型.采用V-foldCross-valid...  研究了关于公司信用评估问题的现状,指出一般神经网络应用于信用评估领域的不足.在此基础上,提出一套甄选原则以选择关键的信用评分指标;然后依据这些指标建立了基于Elman回归神经网络的我国企业的信用评估模型.采用V-foldCross-validation技巧对该模型的评分效果进行了实证研究. 展开更多
关键词 ELMAN神经网络 V-fold cross-validation技巧 信用评分
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基于DBN的风电机组变桨系统可靠性动态评估
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作者 冯红岩 朱海娜 +1 位作者 邱美艳 冯玉龙 《可再生能源》 CAS CSCD 北大核心 2024年第4期486-492,共7页
为了对风电机组变桨系统的潜在风险进行可靠的动态预测,针对变桨系统部件种类多、系统复杂、故障特征提取困难的问题,文章首先对变桨系统故障点和故障传递过程进行归纳分析,建立故障树;然后将其转化为融合Leaky Noisy-Or节点的动态贝叶... 为了对风电机组变桨系统的潜在风险进行可靠的动态预测,针对变桨系统部件种类多、系统复杂、故障特征提取困难的问题,文章首先对变桨系统故障点和故障传递过程进行归纳分析,建立故障树;然后将其转化为融合Leaky Noisy-Or节点的动态贝叶斯网络(DBN),保证了模型精度并具备了动态预测能力;最后采用5折交叉验证的方式对模型进行寻优并验证。测试结果表明,该方法在对变桨系统进行风险预测、故障致因分析、风险动态演化过程分析方面准确率较高,可指导变桨系统进行预防性维护,在保证风电机组整体安全方面具有工程应用价值。 展开更多
关键词 变桨系统 动态贝叶斯网络 交叉验证 可靠性评估
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Asher-McDade鼻唇评价量表的汉化及信效度初步研究
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作者 陈丽先 曾妮 +1 位作者 石冰 黄汉尧 《华西口腔医学杂志》 CAS CSCD 北大核心 2024年第1期97-103,共7页
目的检测Asher-McDade鼻唇评价量表汉化后的信效度,明确其在中国唇裂术后效果评价的可行性。方法通过翻译、回译、调试及预调查形成中文版Asher-McDade鼻唇评价量表,选取四川大学华西口腔医院收治的80例唇腭裂患者的术后照片,并由唇腭... 目的检测Asher-McDade鼻唇评价量表汉化后的信效度,明确其在中国唇裂术后效果评价的可行性。方法通过翻译、回译、调试及预调查形成中文版Asher-McDade鼻唇评价量表,选取四川大学华西口腔医院收治的80例唇腭裂患者的术后照片,并由唇腭裂外科的手术医生、护理人员、研究生共10名等进行问卷调查,检验量表的信度和效度。结果量表克隆巴赫系数为0.804,量表的重测信度为0.895。量表的内容效度指数(ICVI)为1.000,量表平均内容效度指数(S-CVI/ave)为0.95。量表Kaiser-Meyer-Olkin(KMO)值为0.706,巴特利球体检验显示χ^(2)值为962.260(P<0.01),累积方差贡献率为63.095%。结论中文版Asher-McDade鼻唇评价量表具有良好的信度和效度,且适用于中国唇裂患者术后照片的效果评价。 展开更多
关键词 唇裂 鼻唇外观 跨文化调适 信度 效度
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