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First and Second Order Statistics Features for Classification of Magnetic Resonance Brain Images
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作者 Namita Aggarwal R. K. Agrawal 《Journal of Signal and Information Processing》 2012年第2期146-153,共8页
In literature, features based on First and Second Order Statistics that characterizes textures are used for classification of images. Features based on statistics of texture provide far less number of relevant and dis... In literature, features based on First and Second Order Statistics that characterizes textures are used for classification of images. Features based on statistics of texture provide far less number of relevant and distinguishable features in comparison to existing methods based on wavelet transformation. In this paper, we investigated performance of texture-based features in comparison to wavelet-based features with commonly used classifiers for the classification of Alzheimer’s disease based on T2-weighted MRI brain image. The performance is evaluated in terms of sensitivity, specificity, accuracy, training and testing time. Experiments are performed on publicly available medical brain images. Experimental results show that the performance with First and Second Order Statistics based features is significantly better in comparison to existing methods based on wavelet transformation in terms of all performance measures for all classifiers. 展开更多
关键词 Alzheimer’s Disease Magnetic RESONANCE Imaging Feature Extraction Discrete WAVELET Transform first and second order statistical features
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An Approach to Fault Diagnosis of Rotating Machinery Using the Second-Order Statistical Features of Thermal Images and Simplified Fuzzy ARTMAP
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作者 Faisal Al Thobiani Van Tung Tran Tiedo Tinga 《Engineering(科研)》 2017年第6期524-539,共16页
Thermal image, or thermogram, becomes a new type of signal for machine condition monitoring and fault diagnosis due to the capability to display real-time temperature distribution and possibility to indicate the mach... Thermal image, or thermogram, becomes a new type of signal for machine condition monitoring and fault diagnosis due to the capability to display real-time temperature distribution and possibility to indicate the machine’s operating condition through its temperature. In this paper, an investigation of using the second-order statistical features of thermogram in association with minimum redundancy maximum relevance (mRMR) feature selection and simplified fuzzy ARTMAP (SFAM) classification is conducted for rotating machinery fault diagnosis. The thermograms of different machine conditions are firstly preprocessed for improving the image contrast, removing noise, and cropping to obtain the regions of interest (ROIs). Then, an enhanced algorithm based on bi-dimensional empirical mode decomposition is implemented to further increase the quality of ROIs before the second-order statistical features are extracted from their gray-level co-occurrence matrix (GLCM). The highly relevant features to the machine condition are selected from the total feature set by mRMR and are fed into SFAM to accomplish the fault diagnosis. In order to verify this investigation, the thermograms acquired from different conditions of a fault simulator including normal, misalignment, faulty bearing, and mass unbalance are used. This investigation also provides a comparative study of SFAM and other traditional methods such as back-propagation and probabilistic neural networks. The results show that the second-order statistical features used in this framework can provide a plausible accuracy in fault diagnosis of rotating machinery. 展开更多
关键词 Thermal Images second-order statistical features Gray-Level CO-OCCURRENCE Matrix Minimum REDUNDANCY Maximum Relevance Rotating Machinery Fault Diagnosis Simplified Fuzzy ARTMAP
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Statistical Distribution of Depth-Integrated Local Horizontal Momentum for Second-Order Random Ocean Waves in Finite Water Depth
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作者 宋金宝 《海洋工程:英文版》 EI 2004年第3期381-389,共9页
Based on the second order random wave solutions of water wave equations in finite water depth, statistical distributions of the depth integrated local horizontal momentum components are derived by use of the charact... Based on the second order random wave solutions of water wave equations in finite water depth, statistical distributions of the depth integrated local horizontal momentum components are derived by use of the characteristic function expansion method. The parameters involved in the distributions can be all determined by the water depth and the wave number spectrum of ocean waves. As an illustrative example, a fully developed wind generated sea is considered and the parameters are calculated for typical wind speeds and water depths by means of the Donelan and Pierson spectrum. The effects of nonlinearity and water depth on the distributions are also investigated. 展开更多
关键词 statistical distribution depth-integrated local momentum second-order random waves water depth wave-number spectrum
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Statistical second-order two-scale analysis and computation for heat conduction problem with radiation boundary condition in porous materials
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作者 杨志强 刘世伟 孙毅 《Chinese Physics B》 SCIE EI CAS CSCD 2016年第9期189-197,共9页
This paper discusses a statistical second-order two-scale(SSOTS) analysis and computation for a heat conduction problem with a radiation boundary condition in random porous materials.Firstly,the microscopic configur... This paper discusses a statistical second-order two-scale(SSOTS) analysis and computation for a heat conduction problem with a radiation boundary condition in random porous materials.Firstly,the microscopic configuration for the structure with random distribution is briefly characterized.Secondly,the SSOTS formulae for computing the heat transfer problem are derived successively by means of the construction way for each cell.Then,the statistical prediction algorithm based on the proposed two-scale model is described in detail.Finally,some numerical experiments are proposed,which show that the SSOTS method developed in this paper is effective for predicting the heat transfer performance of porous materials and demonstrating its significant applications in actual engineering computation. 展开更多
关键词 statistical second-order two-scale method radiation boundary condition random porous materials
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On-line blind source separation algorithm based on second order statistics 被引量:1
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作者 何文雪 谢剑英 杨煜普 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2005年第3期692-696,共5页
An on-line blind source separation (BSS) algorithm is presented in this paper under the assumption that sources are temporarily correlated signals. By using only some of the observed samples in a recursive calculati... An on-line blind source separation (BSS) algorithm is presented in this paper under the assumption that sources are temporarily correlated signals. By using only some of the observed samples in a recursive calculation, the whitening matrix and the rotation matrix could be approximately obtained through the measurement of only one cost function. SimNations show goad performance of the algorithm. 展开更多
关键词 blind source separation second order statistics cost function.
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Dynamic thermo-mechanical coupled response of random particulate composites:A statistical two-scale method
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作者 杨自豪 陈云 +1 位作者 杨志强 马强 《Chinese Physics B》 SCIE EI CAS CSCD 2014年第7期605-616,共12页
This paper focuses on the dynamic thermo-mechanical coupled response of random particulate composite materials. Both the inertia term and coupling term are considered in the dynamic coupled problem. The formulation of... This paper focuses on the dynamic thermo-mechanical coupled response of random particulate composite materials. Both the inertia term and coupling term are considered in the dynamic coupled problem. The formulation of the problem by a statistical second-order two-scale (SSOTS) analysis method and the algorithm procedure based on the finite-element difference method are presented. Numerical results of coupled cases are compared with those of uncoupled cases. It shows that the coupling effects on temperature, thermal flux, displacement, and stresses are very distinct, and the micro- characteristics of particles affect the coupling effect of the random composites. Furthermore, the coupling effect causes a lag in the variations of temperature, thermal flux, displacement, and stresses. 展开更多
关键词 random particulate composites statistical second-order two-scale (SSOTS) analysis method thermo-mechanical coupling effect numerical algorithm
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A Novel Parsimonious Neurofuzzy Model Applied to Railway Carriage System Identification and Fault Diagnosis 被引量:1
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作者 S.C.Zhou O.L.Shuai +1 位作者 T.T.Wong T.P.Leung 《International Journal of Plant Engineering and Management》 1997年第4期7-11,共5页
In this paper, we suggest a novel parsimonious neurofuzzy model realized by RBFNs for railway carriage system identification and fault diagnosis. To overcome the curse of dimensionality resulting from high dimensional... In this paper, we suggest a novel parsimonious neurofuzzy model realized by RBFNs for railway carriage system identification and fault diagnosis. To overcome the curse of dimensionality resulting from high dimensional input variables, in our developed model the features extracted from the available observations are regarded as the input variables by adopting the higher-order statistics(HOS) technique. Such a constructed model is also applied to a practical railway carriage system, simulation results indicate that the developed neurofuzzy model possesses strong identification and fault diagnosis ability. 展开更多
关键词 parsimonious neurofuzzy model feature extraction by Higher-order Statistics (HOS) railway carriage system identification and fault diagnosis
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New Blind Recognition Method of SCLD and OFDM in Alpha-Stable Noise
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作者 Junlin Zhang Bin Wang Yang Wang 《International Journal of Communications, Network and System Sciences》 2017年第5期240-251,共12页
This paper deals with modulation classification under the alpha-stable noise condition. Our goal is to discriminate orthogonal frequency division multiplexing (OFDM) modulation type from single carrier linear digital ... This paper deals with modulation classification under the alpha-stable noise condition. Our goal is to discriminate orthogonal frequency division multiplexing (OFDM) modulation type from single carrier linear digital (SCLD) modulations in this scenario. Based on the new results concerning the generalized cyclostationarity of these signals in alpha-stable noise which are presented in this paper, we construct new modulation classification features without any priori information of carrier frequency and timing offset of the received signals, and use support vector machine (SVM) as classifier to discriminate OFDM from SCLD. Simulation results show that the recognition accuracy of the proposed algorithm can be up to 95% when the mix signal to noise ratio (MSNR) is up to ?1 dB. 展开更多
关键词 MODULATION Recognition GENERALIZED second-order CYCLIC STATISTICS OFDM Alpha-Stable Noise
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双二阶注意力空谱细节补偿的高光谱图像与多光谱图像融合网络 被引量:1
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作者 吕贤兰 赵泉华 李玉 《控制与决策》 北大核心 2025年第8期2604-2614,共11页
针对优化融合图像的空间细节和光谱细节问题,提出一种双二阶注意力空谱细节补偿的全卷积网络(FCN),分别从高光谱图像和多光谱图像中提取光谱特征和空间特征,并将双模态特征融合,同时注重在细节补偿的约束下将融合后的特征重构为所需高... 针对优化融合图像的空间细节和光谱细节问题,提出一种双二阶注意力空谱细节补偿的全卷积网络(FCN),分别从高光谱图像和多光谱图像中提取光谱特征和空间特征,并将双模态特征融合,同时注重在细节补偿的约束下将融合后的特征重构为所需高空间分辨率高光谱图像.所提出的双二阶注意力残差模块侧重提取图像的空间细节信息和通道细节信息,通过通道梯度表征通道关系的二阶统计量提取通道结构特征,利用物理可解释的图像结构张量表征空间关系的二阶统计量捕捉图像的高频细节,并对损失函数增加拉普拉斯损失与光谱角映射损失来进一步提高融合图像与参考图像的纹理与光谱相似性.通过在两组模拟数据集上的融合实验与多种方法进行对比分析,并从分类角度间接验证融合图像的质量.结果表明:融合图像在各指标上的性能最佳,融合图像的分类精度能够间接反映所提出网络具有良好的融合效果.在两组真实数据集上的实验进一步验证了所提出方法具有良好的泛化能力. 展开更多
关键词 特征融合 全卷积网络 双二阶注意力 浅层细节特征 高光谱图像 超分辨率重建
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基于CNN-ViT混合特征优化的小样本高光谱图像分类
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作者 张津 冯凡 +3 位作者 戴晨光 张振超 于英 刘冰 《测绘学报》 北大核心 2025年第12期2233-2246,共14页
高光谱图像分类是实现地物要素精细识别的关键技术。随着成像技术发展,无人机平台获取的高光谱图像空间分辨率不断提升,给地物精细分类带来了新的机遇和挑战。现有深层网络在小样本条件下对高空间分辨率高光谱图像特征学习不全面。针对... 高光谱图像分类是实现地物要素精细识别的关键技术。随着成像技术发展,无人机平台获取的高光谱图像空间分辨率不断提升,给地物精细分类带来了新的机遇和挑战。现有深层网络在小样本条件下对高空间分辨率高光谱图像特征学习不全面。针对以上问题,本文提出了一种针对卷积神经网络(CNN)和ViT混合特征的优化方法,包括自适应空谱特征学习、双向特征整合和多段特征交互增强3个方面。首先,将多尺度3D空谱特征和局部2D自注意力特征纳入级联残差结构,完成全局-局部多尺度空谱特征提取,增强特征的丰富性。然后,从两个方向整合空间特征和通道特征,提取两个维度的相关性,实现对CNN和ViT提取特征的补充和增强。将上述多段特征融合后,输入分解二阶池化层,解决多段特征之间差异大、缺乏交互的问题。最后,将细粒度融合特征输入全连接层,完成分类。在3个高空间分辨率高光谱图像数据集LongKou、HanChuan、HongHu上进行了小样本分类试验。每类地物仅使用5个样本训练模型,本文方法分类精度分别为94.00%、83.24%和87.63%,验证了本文方法在小样本条件下的有效性。 展开更多
关键词 高光谱图像分类 混合卷积网络 局部自注意力 分解二阶池化 多特征优化 小样本
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前沿元分析模型及教育研究应用
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作者 方龙跃 雷浩 《苏州大学学报(教育科学版)》 北大核心 2025年第4期71-81,共11页
元分析在教育领域已得到广泛应用。然而,随着教育问题的日益复杂化,传统的元分析方法在应对复杂数据结构时显得力不从心。在国外,面向不同情境的前沿元分析模型方兴未艾。但在我国教育领域,新元分析模型的应用却显得相对滞后。鉴于教育... 元分析在教育领域已得到广泛应用。然而,随着教育问题的日益复杂化,传统的元分析方法在应对复杂数据结构时显得力不从心。在国外,面向不同情境的前沿元分析模型方兴未艾。但在我国教育领域,新元分析模型的应用却显得相对滞后。鉴于教育领域面临的问题具有其他学科不具备的特殊挑战,亟须引入一些前沿的元分析模型,以缩小国内外相关研究领域的差距,并拓展国内元分析者解决问题的范畴:三层次元分析,它能处理具有相关性的效应量;网络元分析,它能同时比较多种干预措施的效果;二阶元分析,它能整合一阶元分析冲突的结果,从而获得更精确的结论。本文详细阐述了这些前沿元分析模型的原理、特点及其适用范围,深入探讨了它们在教育学中的具体应用,以及可能带来的机遇与潜在挑战。 展开更多
关键词 三层次元分析 网络元分析 二阶元分析 效应量 教育统计模型
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Bi-iterative least squares algorithms for blind channel identification and equalization with second-order statistics
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作者 OUYANG Shan 《Science in China(Series F)》 2009年第10期1905-1914,共10页
We present an adaptive algorithm for blind identification and equalization of single-input multiple-output (SIMO) FIR channels with second-order statistics. We first reformulate the blind channel identification prob... We present an adaptive algorithm for blind identification and equalization of single-input multiple-output (SIMO) FIR channels with second-order statistics. We first reformulate the blind channel identification problem into a low-rank matrix approximation solution based on the QR decomposition of the received data matrix. Then, a fast recursive algorithm is developed based on the bi-iterative least squares (Bi-LS) subspace tracking method. The new algorithm requires only a computational complexity of O(md2) at each iteration, or even as low as O(md) if only equalization is necessary, where m is the dimension of the received data vector (or the row rank of channel matrix) and d is the dimension of the signal subspace (or the column rank of channel matrix). To overcome the shortcoming of the back substitution, an inverse QR iteration algorithm for subspace tracking and channel equalization is also developed. The inverse QR iteration algorithm is well suited for the parallel implementation in the systolic array. Simulation results are presented to illustrate the effectiveness of the proposed algorithms for the channel identification and equalization. 展开更多
关键词 intersymbol interference interference blind identification and equalization subspace tracking low-rank approximation second-order statistics QR-decomposition inverse QR iteration bi-iteration SIMO
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基于独立分量分析的多次波自适应相减技术 被引量:68
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作者 陆文凯 骆毅 +1 位作者 赵波 钱忠平 《地球物理学报》 SCIE EI CAS CSCD 北大核心 2004年第5期886-891,共6页
针对多次波自适应相减这个关键问题 ,文中首次提出利用独立分量分析技术来实现多次波和一次波的分离 (简称ICAAMS) .现有的多次波自适应相减技术大都是采用输出信号 (一次波 )能量最小准则 ,基于二阶统计量的技术 .本文提出的ICAAMS采... 针对多次波自适应相减这个关键问题 ,文中首次提出利用独立分量分析技术来实现多次波和一次波的分离 (简称ICAAMS) .现有的多次波自适应相减技术大都是采用输出信号 (一次波 )能量最小准则 ,基于二阶统计量的技术 .本文提出的ICAAMS采用了输出信号非高斯性最大准则 ,并利用高阶统计量来表征非高斯性 .简单的褶积模型和复杂的有限差分模型资料处理结果表明 ,本文提出的方法可以有效地分离一次波和多次波 . 展开更多
关键词 独立分量分析 地震勘探 多次波压制 高阶统计量 非高斯性
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机械信号处理的BSS算法及其比较研究 被引量:8
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作者 张金玉 黄先祥 谢伟达 《振动工程学报》 EI CSCD 北大核心 2008年第4期409-416,共8页
在由多个独立振动构成的复杂机械振动的状态监测和故障诊断中,复杂机械信号的分离和识别的效果往往是其故障诊断成功的关键。为了得到最佳的机械信号分离算法,对5类经典的盲源分离(BSS)算法的特点和性能进行了比较研究,提出了一套评价准... 在由多个独立振动构成的复杂机械振动的状态监测和故障诊断中,复杂机械信号的分离和识别的效果往往是其故障诊断成功的关键。为了得到最佳的机械信号分离算法,对5类经典的盲源分离(BSS)算法的特点和性能进行了比较研究,提出了一套评价准则,使用典型的仿真机械信号,对其在机械故障诊断中的典型机械信号的分离效果进行了充分的实验和详细评估。之后,运用两组来自真实工业设备部件的振动数据去检验其结果。研究结果表明不同的BSS算法具有各自的特点,对处理不同类型的机械信号有不同的效果,其结果有指导意义。 展开更多
关键词 盲信号分离 机械信号处理 故障诊断 二阶统计学 高阶统计学
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高阶统计量与RBF网络结合用于齿轮故障分类 被引量:18
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作者 张桂才 史铁林 +1 位作者 轩建平 杨叔子 《中国机械工程》 EI CAS CSCD 北大核心 1999年第11期1250-1252,共3页
提出一种基于高阶统计量特征提取的径向基函数网络齿轮故障分类方法。以齿轮箱振动信号的高阶统计量估计值作为齿轮故障特征,以径向基函数神经网络作为分类器,成功地对齿轮故障进行了分类。研究表明。
关键词 人工神经网络 齿轮 故障诊断 高阶统计量
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基于高阶统计量的机械故障特征提取方法研究 被引量:41
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作者 张桂才 史铁林 杨叔子 《华中理工大学学报》 CSCD 北大核心 1999年第3期6-8,共3页
对高阶统计量用于机械故障特征提取进行了研究.首先利用Hilbert变换构造原始信号的解析信号,求取信号的包络,然后计算包络信号的高阶统计量.研究表明,用高阶统计量提取信号特征,可以容易地将正常齿轮信号和齿轮裂纹、断齿... 对高阶统计量用于机械故障特征提取进行了研究.首先利用Hilbert变换构造原始信号的解析信号,求取信号的包络,然后计算包络信号的高阶统计量.研究表明,用高阶统计量提取信号特征,可以容易地将正常齿轮信号和齿轮裂纹、断齿的信号分离. 展开更多
关键词 高阶统计量 特征提取 故障诊断 机械设备 统计量
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基于次序统计量像素灰度相似度的图像双边滤波 被引量:8
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作者 肖秀春 彭群生 +3 位作者 卢晓敏 王章野 张雨浓 姜孝华 《计算机辅助设计与图形学学报》 EI CSCD 北大核心 2011年第7期1232-1237,共6页
针对一般双边滤波器定义中的像素灰度相似度函数易受图像噪声影响,不能很好地表征像素之间的实际相似性的问题,设计了一个基于次序统计量的像素灰度相似度函数.基于图像中相邻像素之间的相关性,可近似地将某像素的1环邻域所有像素的灰... 针对一般双边滤波器定义中的像素灰度相似度函数易受图像噪声影响,不能很好地表征像素之间的实际相似性的问题,设计了一个基于次序统计量的像素灰度相似度函数.基于图像中相邻像素之间的相关性,可近似地将某像素的1环邻域所有像素的灰度视为该像素灰度的n(n≤9)次观测值,并定义为n-次序统计量.依据两像素灰度的n-次序统计量的欧氏距离定义它们的灰度相似度.该相似度函数结合了像素1环邻域灰度分布的统计属性,能较好地抑制噪声的影响.仿真实验验证了所提出基于次序统计量像素灰度相似度的双边滤波算法具有良好的滤波特性. 展开更多
关键词 特征保留 次序统计量 双边滤波 相似度函数 图像去噪
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采用FFT方法的抗阶数过估计信道盲辨识算法 被引量:26
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作者 白曜铭 蒋建中 +1 位作者 孙有铭 郭军利 《信号处理》 CSCD 北大核心 2014年第1期65-71,共7页
针对二阶统计量信道盲辨识算法在小样本观测数据条件下性能恶化且对信道阶数误差敏感的问题,本文首先提出一种改进的基于FFT变换的信道盲辨识算法(FFT-MCR),该算法充分利用MCR算法只需最小冗余度信息求解信道向量的特性,有效地降低了原... 针对二阶统计量信道盲辨识算法在小样本观测数据条件下性能恶化且对信道阶数误差敏感的问题,本文首先提出一种改进的基于FFT变换的信道盲辨识算法(FFT-MCR),该算法充分利用MCR算法只需最小冗余度信息求解信道向量的特性,有效地降低了原算法(BI-FFT)的计算复杂度且性能相当。研究表明FFT-MCR算法在信道阶数过估计情况下额外引入的公零点具有单位圆聚集性,同时提出一种具有较强阶数鲁棒性的盲辨识算法(R-FFT-MCR),算法通过聚类的思想搜索单位圆周围的公零点并将其移除,实现准确的信道估计。理论分析与仿真实验验证了所提算法的有效性。 展开更多
关键词 信道盲辨识 单输入多输出 二阶统计量 小样本数据
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用于遥感图像拼接的改进SURF算法 被引量:18
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作者 董强 刘晶红 周前飞 《吉林大学学报(工学版)》 EI CAS CSCD 北大核心 2017年第5期1644-1652,共9页
经典的SURF算法存在许多不足,如特征描述符维度高、运算量大,对于旋转和拍射视角变换角度过大时,匹配精度低等。针对以上问题,提出了一种改进算法,首先通过Hessian矩阵提取特征点,然后采用特征点圆形邻域进行特征描述,使用Haar小波响应... 经典的SURF算法存在许多不足,如特征描述符维度高、运算量大,对于旋转和拍射视角变换角度过大时,匹配精度低等。针对以上问题,提出了一种改进算法,首先通过Hessian矩阵提取特征点,然后采用特征点圆形邻域进行特征描述,使用Haar小波响应为每个特征点建立描述符,同时计算邻域内归一化的灰度差分及二阶梯度,形成新的特征描述符,最后采用RANSAC算法剔除误匹配点。该算法不仅较经典SURF算法具有速度优势,同时充分利用了灰度信息和细节信息,具有更高的精度。实验结果表明:该算法对图像的模糊、光照差异、角度旋转、视场变换等均有良好的鲁棒性和稳定性。将该算法应用于遥感图像拼接,得到无明显几何移位、边缘衔接良好的拼接图像。该算法是一种耗时短、精度高的图像配准算法,能够满足遥感图像拼接对配准的要求。 展开更多
关键词 计算机应用 图像配准 特征提取 SURF算法 二阶梯度
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在线增强型复值混合信号盲分离算法研究 被引量:7
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作者 丛丰裕 雷菊阳 +3 位作者 许海翔 周士弘 杜栓平 史习智 《西安交通大学学报》 EI CAS CSCD 北大核心 2006年第9期1070-1073,共4页
基于二阶统计量,对在线分离复值混合信号法进行了研究.假设源信号是独立的且非常态,信号的伪协方差矩阵能增加约束条件,从而可证明二阶统计量能够完全分离复值混合信号,而且对信号是否平稳不作要求.结合非常态信号的独立性,构造出代价函... 基于二阶统计量,对在线分离复值混合信号法进行了研究.假设源信号是独立的且非常态,信号的伪协方差矩阵能增加约束条件,从而可证明二阶统计量能够完全分离复值混合信号,而且对信号是否平稳不作要求.结合非常态信号的独立性,构造出代价函数,利用梯度下降法推导出在线盲分离算法.通过盲分离算法的仿真试验,发现所提出的盲分离算法能充分利用复值非常态信号的二阶统计量,算法具有鲁棒性好、运算速度快和可在线实现等优点. 展开更多
关键词 盲分离 复值混合信号 二阶统计量 伪协方差矩阵 在线
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