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Quantization-Based Robust Image Watermarking Using the Dual Tree Complex Wavelet Transform 被引量:4
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作者 LIU Jinhua SHE Kun 《China Communications》 SCIE CSCD 2010年第4期1-6,共6页
Conventional quantization index modulation (QIM) watermarking uses the fixed quantization step size for the host signal.This scheme is not robust against geometric distortions and may lead to poor fidelity in some are... Conventional quantization index modulation (QIM) watermarking uses the fixed quantization step size for the host signal.This scheme is not robust against geometric distortions and may lead to poor fidelity in some areas of content.Thus,we proposed a quantization-based image watermarking in the dual tree complex wavelet domain.We took advantages of the dual tree complex wavelets (perfect reconstruction,approximate shift invariance,and directional selectivity).For the case of watermark detecting,the probability of false alarm and probability of false negative were exploited and verified by simulation.Experimental results demonstrate that the proposed method is robust against JPEG compression,additive white Gaussian noise (AWGN),and some kinds of geometric attacks such as scaling,rotation,etc. 展开更多
关键词 Image Watermarking Quantization IndexModulation dual tree complex wavelet transform JPEG Compression
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Insect recognition based on integrated region matching and dual tree complex wavelet transform 被引量:2
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作者 Le-qing ZHU Zhen ZHANG 《Journal of Zhejiang University-Science C(Computers and Electronics)》 SCIE EI 2011年第1期44-53,共10页
To provide pest technicians with a convenient way to recognize insects,a novel method is proposed to classify insect images by integrated region matching (IRM) and dual tree complex wavelet transform (DTCWT).The wing ... To provide pest technicians with a convenient way to recognize insects,a novel method is proposed to classify insect images by integrated region matching (IRM) and dual tree complex wavelet transform (DTCWT).The wing image of the lepidopteran insect is preprocessed to obtain the region of interest (ROI) whose position is then calibrated.The ROI is first segmented with the k-means algorithm into regions according to the color features,properties of all the segmented regions being used as a coarse level feature.The color image is then converted to a grayscale image,where DTCWT features are extracted as a fine level feature.The IRM scheme is undertaken to find K nearest neighbors (KNNs),out of which the nearest neighbor is searched by computing the Canberra distance of DTCWT features.The method was tested with a database including 100 lepidopteran insect species from 18 families and the recognition accuracy was 84.47%.For the forewing subset,a recognition accuracy of 92.38% was achieved.The results showed that the proposed method can effectively solve the problem of automatic species identification of lepidopteran specimens. 展开更多
关键词 Lepidopteran insects Auto-classification k-means algorithm Integrated region matching (IRM) dual tree complex wavelet transform (DTCWT)
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A Dual Tree Complex Discrete Cosine Harmonic Wavelet Transform (ADCHWT) and Its Application to Signal/Image Denoising 被引量:3
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作者 M. Shivamurti S. V. Narasimhan 《Journal of Signal and Information Processing》 2011年第3期218-226,共9页
A new simple and efficient dual tree analytic wavelet transform based on Discrete Cosine Harmonic Wavelet Transform DCHWT (ADCHWT) has been proposed and is applied for signal and image denoising. The analytic DCHWT ha... A new simple and efficient dual tree analytic wavelet transform based on Discrete Cosine Harmonic Wavelet Transform DCHWT (ADCHWT) has been proposed and is applied for signal and image denoising. The analytic DCHWT has been realized by applying DCHWT to the original signal and its Hilbert transform. The shift invariance and the envelope extraction properties of the ADCHWT have been found to be very effective in denoising speech and image signals, compared to that of DCHWT. 展开更多
关键词 ANALYTIC DISCRETE COSINE Harmonic wavelet transform ANALYTIC wavelet transform dual tree complex wavelet transform DCT Shift Invariant wavelet transform wavelet transform Denoising
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Image inpainting using complex 2-D dual-tree wavelet transform
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作者 YANG Jian-bin 《Applied Mathematics(A Journal of Chinese Universities)》 SCIE CSCD 2011年第1期70-76,共7页
The dual-tree complex wavelet transform is a useful tool in signal and image process- ing. In this paper, we propose a dual-tree complex wavelet transform (CWT) based algorithm for image inpalnting problem. Our appr... The dual-tree complex wavelet transform is a useful tool in signal and image process- ing. In this paper, we propose a dual-tree complex wavelet transform (CWT) based algorithm for image inpalnting problem. Our approach is based on Cai, Chan, Shen and Shen's framelet-based algorithm. The complex wavelet transform outperforms the standard real wavelet transform in the sense of shift-invariance, directionality and anti-aliasing. Numerical results illustrate the good performance of our algorithm. 展开更多
关键词 Image inpainting dual-tree complex wavelet transform wavelet shrinkage method.
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Seismic signal analysis based on the dual-tree complex wavelet packet transform
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作者 XIE Zhou-min(谢周敏) WANG En-fu(王恩福) +2 位作者 ZHANG Guo-hong(张国宏) ZHAO Guo-cun(赵国存) CHEN Xu-geng(陈旭庚) 《Acta Seismologica Sinica(English Edition)》 CSCD 2004年第z1期117-122,共6页
We tried to apply the dual-tree complex wavelet packet transform in seismic signal analysis. The complex wavelet packet transform (CWPT) combine the merits of real wavelet packet transform with that of complex contin... We tried to apply the dual-tree complex wavelet packet transform in seismic signal analysis. The complex wavelet packet transform (CWPT) combine the merits of real wavelet packet transform with that of complex continuous wavelet transform (CCWT). It can not only pick up the phase information of signal, but also produce better ″focal- izing″ function if it matches the phase spectrum of signals analyzed. We here described the dual-tree CWPT algo- rithm, and gave the examples of simulation and actual seismic signals analysis. As shown by our results, the dual-tree CWPT is a very effective method in analyzing seismic signals with non-linear phase. 展开更多
关键词 dual-tree complex wavelet packet transform instantaneous characteristics seismicsignalanalysis
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Defects Recognition of 3D Braided Composite Based on Dual-Tree Complex Wavelet Packet Transform
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作者 贺晓丽 王瑞 《Journal of Donghua University(English Edition)》 EI CAS 2015年第5期749-752,共4页
Textile-reinforced composites,due to their excellent highstrength-to-low-mass ratio, provide promising alternatives to conventional structural materials in many high-tech sectors. 3D braided composites are a kind of a... Textile-reinforced composites,due to their excellent highstrength-to-low-mass ratio, provide promising alternatives to conventional structural materials in many high-tech sectors. 3D braided composites are a kind of advanced composites reinforced with 3D braided fabrics; the complex nature of 3D braided composites makes the evaluation of the quality of the product very difficult. In this investigation,a defect recognition platform for 3D braided composites evaluation was constructed based on dual-tree complex wavelet packet transform( DT-CWPT) and backpropagation( BP) neural networks. The defects in 3D braided composite materials were probed and detected by an ultrasonic sensing system. DT-CWPT method was used to analyze the ultrasonic scanning pulse signals,and the feature vectors of these signals were extracted into the BP neural networks as samples. The type of defects was identified and recognized with the characteristic ultrasonic wave spectra. The position of defects for the test samples can be determined at the same time. This method would have great potential to evaluate the quality of 3D braided composites. 展开更多
关键词 3D braided composite dual-tree complex wavelet packet transform(DT-CWPT) ultrasonic wave
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A Complex Wavelet Transform Approach for 1 Dimensional Signal
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作者 Mukund Gokhale Daljeet Kaur Khanduja 《通讯和计算机(中英文版)》 2010年第8期62-72,共11页
关键词 复小波变换 信号途径 一维 离散小波变换 小波滤波器 平移不变性 复杂系数 标准制定
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NEW METHOD OF EXTRACTING WEAK FAILURE INFORMATION IN GEARBOX BY COMPLEX WAVELET DENOISING 被引量:19
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作者 CHEN Zhixin XU Jinwu YANG Debin 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2008年第4期87-91,共5页
Because the extract of the weak failure information is always the difficulty and focus of fault detection. Aiming for specific statistical properties of complex wavelet coefficients of gearbox vibration signals, a new... Because the extract of the weak failure information is always the difficulty and focus of fault detection. Aiming for specific statistical properties of complex wavelet coefficients of gearbox vibration signals, a new signal-denoising method which uses local adaptive algorithm based on dual-tree complex wavelet transform (DT-CWT) is introduced to extract weak failure information in gear, especially to extract impulse components. By taking into account the non-Gaussian probability distribution and the statistical dependencies among wavelet coefficients of some signals, and by taking the advantage of near shift-invariance of DT-CWT, the higher signal-to-noise ratio (SNR) than common wavelet denoising methods can be obtained. Experiments of extracting periodic impulses in gearbox vibration signals indicate that the method can extract incipient fault feature and hidden information from heavy noise, and it has an excellent effect on identifying weak feature signals in gearbox vibration signals. 展开更多
关键词 dual-tree complex wavelet transform Signal-denoising Gear fault diagnosis Early fault detection
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Recognition of Group Activities Using Complex Wavelet Domain Based Cayley-Klein Metric Learning
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作者 Gensheng Hu Min Li +2 位作者 Dong Liang Mingzhu Wan Wenxia Bao 《Journal of Beijing Institute of Technology》 EI CAS 2018年第4期592-603,共12页
A group activity recognition algorithm is proposed to improve the recognition accuracy in video surveillance by using complex wavelet domain based Cayley-Klein metric learning.Non-sampled dual-tree complex wavelet pac... A group activity recognition algorithm is proposed to improve the recognition accuracy in video surveillance by using complex wavelet domain based Cayley-Klein metric learning.Non-sampled dual-tree complex wavelet packet transform(NS-DTCWPT)is used to decompose the human images in videos into multi-scale and multi-resolution.An improved local binary pattern(ILBP)and an inner-distance shape context(IDSC)combined with bag-of-words model is adopted to extract the decomposed high and low frequency coefficient features.The extracted coefficient features of the training samples are used to optimize Cayley-Klein metric matrix by solving a nonlinear optimization problem.The group activities in videos are recognized by using the method of feature extraction and Cayley-Klein metric learning.Experimental results on behave video set,group activity video set,and self-built video set show that the proposed algorithm has higher recognition accuracy than the existing algorithms. 展开更多
关键词 video surveillance group activity recognition non-sampled dual-tree complex wavelet packet transform(NS-DTCWPT) Cayley-Klein metric learning
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Tracking of Non-Rigid Object in Complex Wavelet Domain
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作者 Om Prakash Ashish Khare 《Journal of Signal and Information Processing》 2011年第2期105-111,共7页
In this paper we have proposed an object tracking method using Dual Tree Complex Wavelet Transform (DTCxWT). The proposed method is capable of tracking the moving object in video sequences. The object is assumed to be... In this paper we have proposed an object tracking method using Dual Tree Complex Wavelet Transform (DTCxWT). The proposed method is capable of tracking the moving object in video sequences. The object is assumed to be deform-able under limit i.e. it may change its shape from one frame to another. The basic idea in the proposed method is to decompose the image into two components: a two dimensional motion and a two dimensional shape change. The motion component is factored out while the shape is explicitly represented by storing a sequence of two dimensional models. Each model corresponds to each image frame. The proposed method performs well when the change in the shape in the consecutive frames is small however the 2-D motion in consecutive frames may be large. The proposed algorithm is capable of handling the partial as well as full occlusion of the object. 展开更多
关键词 Object TRACKING dual tree complex wavelet transform Model Based TRACKING BIORTHOGONAL FILTERS
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基于强化双树复小波包变换的风电机组偏航轴承损伤识别
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作者 王晓龙 金韩微 +3 位作者 张博文 石海超 杨秀彬 何玉灵 《动力工程学报》 北大核心 2025年第1期115-123,共9页
针对风电机组偏航轴承损伤识别问题,提出了基于强化双树复小波包变换的损伤识别方法。首先,通过双树复小波包变换与线性峭度结合对不同分解层数下的分量计算平均线性峭度值,确定最优分解层数;其次,对最优分解所得小波系数及尺度系数进... 针对风电机组偏航轴承损伤识别问题,提出了基于强化双树复小波包变换的损伤识别方法。首先,通过双树复小波包变换与线性峭度结合对不同分解层数下的分量计算平均线性峭度值,确定最优分解层数;其次,对最优分解所得小波系数及尺度系数进行幅值调制,进而增强不同信号成分的能量;然后,采用散布熵指标确定各分量最佳调制系数并通过双树复小波包逆变换得到修正信号;最后,对修正信号作归一化平方包络谱分析提取故障特征频率。结果表明:所提方法能够实现复杂工况下偏航轴承损伤类型的准确识别,具有一定工程参考价值。 展开更多
关键词 风电机组 偏航轴承 双树复小波包变换 谱幅值调制
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基于双树复小波变换与稀疏表示的牙隐裂OCT三维图像融合
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作者 石博雅 董潇阳 《天津工业大学学报》 北大核心 2025年第1期62-68,共7页
针对采用光学相干层析(OCT)技术进行体积较大的前磨牙和磨牙的隐裂检测时,仅从单一扫描视角采集可能存在误检或漏检的问题,提出一种双树复小波变换(DTCWT)与稀疏表示(SR)相结合的牙隐裂三维图像融合方法。利用扫频OCT对人工牙隐裂模型从... 针对采用光学相干层析(OCT)技术进行体积较大的前磨牙和磨牙的隐裂检测时,仅从单一扫描视角采集可能存在误检或漏检的问题,提出一种双树复小波变换(DTCWT)与稀疏表示(SR)相结合的牙隐裂三维图像融合方法。利用扫频OCT对人工牙隐裂模型从2个扫描视角进行成像,经过三维图像配准后,利用双树复小波变换对图像进行分解。对于低频子带进行稀疏表示,采用“最大L1范数”规则进行融合,高频子带采用“绝对最大”规则融合,最后通过DTCWT重构得到融合后的图像。实验结果表明:采用本文方法融合后的牙隐裂图像可以得到裂纹的完整信息,获得准确的定位和分级,各方面性能均优于单独采用各多尺度分解方法和稀疏表示方法,标准差(SD)、平均梯度(AG)、空间频率(SF)和边缘信息评价因子(Q)的值分别平均提高到36.7、6.0、27.9和0.74,有效提高了OCT牙隐裂检测的准确性。 展开更多
关键词 牙隐裂 光学相干层析 稀疏表示 双树复小波变换
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Pixel level image fusion scheme based on accumulated gradient and PCA transform 被引量:1
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作者 LI Bo L V Hai-lian 《通讯和计算机(中英文版)》 2009年第2期49-54,共6页
关键词 图像融合方法 梯度 双树复小波变换 图像处理
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基于定子电流和电磁转矩双信号融合的齿轮故障智能诊断
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作者 李巍 袁响东 +1 位作者 陈伟 刘军 《电气工程学报》 CSCD 北大核心 2024年第3期248-256,共9页
在电机驱动的齿轮传动系统中,电机本体具有传感器的特性,因此可以通过电机的定子电流、电磁转矩信号来进行齿轮故障分析,由于受转速和负载转矩的影响,使得故障诊断结果的准确率较低。针对此问题,提出一种基于双信号融合与反向传播神经... 在电机驱动的齿轮传动系统中,电机本体具有传感器的特性,因此可以通过电机的定子电流、电磁转矩信号来进行齿轮故障分析,由于受转速和负载转矩的影响,使得故障诊断结果的准确率较低。针对此问题,提出一种基于双信号融合与反向传播神经网络相结合的齿轮故障诊断方法。对电机齿轮传动系统一体化建模,进行电机齿轮传动系统联合仿真。对齿轮的不同故障进行模拟,得到电机侧定子电流和电磁转矩的故障信号,采用双树复小波变换来分析齿轮故障频段信号,提取故障特征量,建立了丰富的齿轮故障样本库。搭建反向传播神经网络并提出改进的自适应学习率算法,实现了对齿轮断齿、磨损故障的精确分类。为了验证所提方法的有效性,搭建齿轮故障试验平台,对相应齿轮故障进行诊断。结果表明,所提方法能够在不同转速和负载转矩条件下准确辨识齿轮的故障类型,相较于只采用定子电流和电磁转矩中一种信号对齿轮进行故障诊断,该方法准确率更高。 展开更多
关键词 齿轮故障 传动系统 神经网络 双树复小波变换 智能诊断
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双树复小波变换下的数字图像鲁棒性水印方法
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作者 张琳钦 《常州工学院学报》 2024年第5期52-59,共8页
为提高数字图像的峰值信噪比,提出基于双树复小波变换的数字图像鲁棒性水印方法。利用双树复小波变换对原始输入图像进行分解,结合小波函数与图像重构条件,降低输出信息的冗余度,并通过计算各子图的高频变量,确定水印嵌入位置,以此为依... 为提高数字图像的峰值信噪比,提出基于双树复小波变换的数字图像鲁棒性水印方法。利用双树复小波变换对原始输入图像进行分解,结合小波函数与图像重构条件,降低输出信息的冗余度,并通过计算各子图的高频变量,确定水印嵌入位置,以此为依据,根据嵌入强度因子与水印嵌入密钥实现水印的嵌入,通过图像水印序列的解扩与反置乱操作,对图像水印进行提取,继而完成水印的嵌入与提取过程。实验结果表明,所提方法的峰值信噪比较高,具有良好的鲁棒性。 展开更多
关键词 双树复小波变换 数字图像 鲁棒性 水印方法
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机器人锅炉冷态空气动力场测量系统开发 被引量:1
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作者 寇梦楠 刘海玉 +2 位作者 牛俊天 金燕 吴杨 《动力工程学报》 CAS CSCD 北大核心 2024年第2期284-291,300,共9页
针对锅炉冷态空气动力场试验自动化程度低、操作危险性大的问题,开发了机器人锅炉冷态空气动力场试验测量系统。系统下位机采用STM32芯片作为主控芯片,控制爬壁机器人的运动以及与上位机的信息交换,同时引入混沌线性惯性权重对粒子群优... 针对锅炉冷态空气动力场试验自动化程度低、操作危险性大的问题,开发了机器人锅炉冷态空气动力场试验测量系统。系统下位机采用STM32芯片作为主控芯片,控制爬壁机器人的运动以及与上位机的信息交换,同时引入混沌线性惯性权重对粒子群优化模糊PID算法进行优化,并将改进后的算法作为机器人运动路径的控制策略,对于机械臂的控制引入D-H法。上位机为LabVIEW搭建的操作平台,通过嵌入双树复小波变换去噪算法,对采集到的风速信号进行降噪处理。结果表明:所提出的系统各个模块均可正常且稳定运行,与人工测试的误差保持在±10%,能够满足锅炉冷态试验的要求。 展开更多
关键词 锅炉 机器人 STM32 LabVIEW 改进粒子群优化模糊PID D-H法 双树复小波变换
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用于低剂量CT图像去噪的多级双树复小波网络
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作者 张鲁 田春伟 +1 位作者 宋焕生 刘侍刚 《计算机工程》 CAS CSCD 北大核心 2024年第9期266-275,共10页
基于卷积神经网络(CNN)的图像去噪方法能有效去除低剂量计算机断层扫描(CT)图像伴随的伪影和噪声,从而确保CT设备输出高质量图像同时降低辐射,这对患者健康和医学诊断具有重要意义。为了进一步提高低剂量CT图像的质量,提出一种小波域去... 基于卷积神经网络(CNN)的图像去噪方法能有效去除低剂量计算机断层扫描(CT)图像伴随的伪影和噪声,从而确保CT设备输出高质量图像同时降低辐射,这对患者健康和医学诊断具有重要意义。为了进一步提高低剂量CT图像的质量,提出一种小波域去噪网络MDTNet。首先,基于双树复小波变换(DTCWT)构造多级编解码去噪网络,在多个尺度上提取特征以保留更多高频细节;然后,利用扩展的像素重排技术替代卷积上下采样,实现多级输入和特征融合,从而降低计算复杂度;最后,通过大量训练找到最佳的去噪模型,即二级MDTNet配合LeGall滤波器和Qshift_b滤波器,并选择较大尺寸的CT图像作为训练数据。使用AAPM数据集评估MDTNet的性能,实验结果表明,MDTNet能有效去除条纹状伪影和噪声,在定量和定性评估中性能均优于同类型去噪方法。与FWDNet相比,对于1 mm的切片,MDTNet的平均峰值信噪比(PSNR)和结构相似性指数(SSIM)分别提高了0.0887 dB和0.0024;对于3 mm的切片,分别提升了0.1443 dB和0.003。对于单张512×512像素的低剂量CT图像去噪,MDTNet在GPU上仅需0.193 s。MDTNet在保持高效率的同时保留了更多的高频细节,能够为低剂量CT图像去噪提供一种新的框架。 展开更多
关键词 低剂量CT图像 图像去噪 卷积神经网络 双树复小波变换 像素重排
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基于光响应非均匀性的WhatsApp压缩视频来源识别
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作者 陈懿辉 田妮莉 +1 位作者 潘晴 苏开清 《应用光学》 CAS 北大核心 2024年第2期337-345,共9页
光响应非均匀噪声(photo response nonuniformity,PRNU)是光学成像传感器成像时引入的一种独特噪声,可有效识别压缩视频的来源。针对现有算法提取压缩视频的PRNU效果并不显著的问题,论文提出了一种改进PRNU提取算法。首先,去除视频编解... 光响应非均匀噪声(photo response nonuniformity,PRNU)是光学成像传感器成像时引入的一种独特噪声,可有效识别压缩视频的来源。针对现有算法提取压缩视频的PRNU效果并不显著的问题,论文提出了一种改进PRNU提取算法。首先,去除视频编解码的环路滤波器,对视频帧使用双密度双树复小波变换进行分解;然后对高频子带使用基于贝叶斯阈值估计的双变量收缩算法进行估计,再使用自适应加窗维纳滤波进行二次估计,得到噪声残差;最后用基于量化参数值加权的最大似然估计法聚合噪声残差,再与视频帧估计得到PRNU。实验结果表明:该文提出的方法在20 s时WhatsApp视频的识别率为75%。 展开更多
关键词 光响应非均匀性 源相机识别 压缩视频 双密度双树复小波变换 双变量收缩
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基于DTCWT-VAE的弹道中段目标RCS识别
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作者 王彩云 张慧雯 +2 位作者 王佳宁 吴钇达 常韵 《系统工程与电子技术》 EI CSCD 北大核心 2024年第7期2269-2275,共7页
针对弹道目标雷达信号易受环境影响、目标识别准确率低的问题,提出了一种基于双树复小波变换(dual-tree complex wavelet transform,DTCWT)和变分自编码器(variational autoencoder,VAE)的弹道目标雷达散射截面(radar cross section,RCS... 针对弹道目标雷达信号易受环境影响、目标识别准确率低的问题,提出了一种基于双树复小波变换(dual-tree complex wavelet transform,DTCWT)和变分自编码器(variational autoencoder,VAE)的弹道目标雷达散射截面(radar cross section,RCS)识别法。首先,采用DTCWT对弹道目标RCS动态数据进行预处理,再利用VAE提取目标的隐变量特征,最后用支持向量机(support vector machine,SVM)分类器进行识别。实验结果表明,与已有方法相比,该方法具有更高的识别概率,且鲁棒性较好。 展开更多
关键词 弹道目标 目标识别 雷达散射截面 双树复小波变换 变分自编码器
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考虑运行损耗的变电站主变压器局部放电故障诊断
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作者 赵明星 《自动化仪表》 CAS 2024年第12期24-28,共5页
变压器运行损耗的增加会破坏放电信号的可识别稳定性,导致变压器的运行性能降低。在考虑运行损耗的情况下,研究了变电站主变压器局部放电故障诊断方法。引入最大峭度解卷积(MKD)改进双树复小波变换(DTCWT),对变电站主变压器局部放电信... 变压器运行损耗的增加会破坏放电信号的可识别稳定性,导致变压器的运行性能降低。在考虑运行损耗的情况下,研究了变电站主变压器局部放电故障诊断方法。引入最大峭度解卷积(MKD)改进双树复小波变换(DTCWT),对变电站主变压器局部放电信号作去噪。采用多尺度熵和变分模态分解相结合的方法,提取变电站主变压器局部放电故障特征,并将全部特征输入反向传播(BP)神经网络分类器以实现故障诊断。试验结果表明,采用所提方法进行变电站主变压器局部放电故障诊断,可以得到高精度的局部放电故障诊断结果。所提方法具有较高的实际应用可靠性,有助于提高主变压器运行的稳定性。 展开更多
关键词 变电站 主变压器 局部放电 运行损耗 故障诊断 信号去噪 双树复小波变换
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