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Coupling denoising algorithm based on discrete wavelet transform and modified median filter for medical image 被引量:29
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作者 CHEN Bing-quan CUI Jin-ge +2 位作者 XU Qing SHU Ting LIU Hong-li 《Journal of Central South University》 SCIE EI CAS CSCD 2019年第1期120-131,共12页
In order to overcome the phenomenon of image blur and edge loss in the process of collecting and transmitting medical image,a denoising method of medical image based on discrete wavelet transform(DWT)and modified medi... In order to overcome the phenomenon of image blur and edge loss in the process of collecting and transmitting medical image,a denoising method of medical image based on discrete wavelet transform(DWT)and modified median filter for medical image coupling denoising is proposed.The method is composed of four modules:image acquisition,image storage,image processing and image reconstruction.Image acquisition gets the medical image that contains Gaussian noise and impulse noise.Image storage includes the preservation of data and parameters of the original image and processed image.In the third module,the medical image is decomposed as four sub bands(LL,HL,LH,HH)by wavelet decomposition,where LL is low frequency,LH,HL,HH are respective for horizontal,vertical and in the diagonal line high frequency component.Using improved wavelet threshold to process high frequency coefficients and retain low frequency coefficients,the modified median filtering is performed on three high frequency sub bands after wavelet threshold processing.The last module is image reconstruction,which means getting the image after denoising by wavelet reconstruction.The advantage of this method is combining the advantages of median filter and wavelet to make the denoising effect better,not a simple combination of the two previous methods.With DWT and improved median filter coefficients coupling denoising,it is highly practical for high-precision medical images containing complex noises.The experimental results of proposed algorithm are compared with the results of median filter,wavelet transform,contourlet and DT-CWT,etc.According to visual evaluation index PSNR and SNR and Canny edge detection,in low noise images,PSNR and SNR increase by 10%–15%;in high noise images,PSNR and SNR increase by 2%–6%.The experimental results of the proposed algorithm achieved better acceptable results compared with other methods,which provides an important method for the diagnosis of medical condition. 展开更多
关键词 medical image image denoising discrete wavelet transform modified median filter coupling denoising
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A secure image steganography algorithm based on least significant bit and integer wavelet transform 被引量:3
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作者 ELSHAZLY Emad ABDELWAHAB Safey +3 位作者 ABOUZAID Refaat ZAHRAN Osama ELARABY Sayed ELKORDY Mohamed 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2018年第3期639-649,共11页
The rapid development of data communication in modern era demands secure exchange of information. Steganography is an established method for hiding secret data from an unauthorized access into a cover object in such a... The rapid development of data communication in modern era demands secure exchange of information. Steganography is an established method for hiding secret data from an unauthorized access into a cover object in such a way that it is invisible to human eyes. The cover object can be image, text, audio,or video. This paper proposes a secure steganography algorithm that hides a bitstream of the secret text into the least significant bits(LSBs) of the approximation coefficients of the integer wavelet transform(IWT) of grayscale images as well as each component of color images to form stego-images. The embedding and extracting phases of the proposed steganography algorithms are performed using the MATLAB software. Invisibility, payload capacity, and security in terms of peak signal to noise ratio(PSNR) and robustness are the key challenges to steganography. The statistical distortion between the cover images and the stego-images is measured by using the mean square error(MSE) and the PSNR, while the degree of closeness between them is evaluated using the normalized cross correlation(NCC). The experimental results show that, the proposed algorithms can hide the secret text with a large payload capacity with a high level of security and a higher invisibility. Furthermore, the proposed technique is computationally efficient and better results for both PSNR and NCC are achieved compared with the previous algorithms. 展开更多
关键词 image steganography image processing integer wavelet transform
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New algorithm for infrared small target image enhancement based on wavelet transform and human visual properties 被引量:1
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作者 Wang Xuewei Liu Songtao Zhou Xiaodong 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2006年第2期268-273,共6页
The key to the wavelet based denoising teehniquea is how to manipulate the wavelet coefficients. By referring to the idea of Inclusive-OR in the design of circuits, this paper proposes a new algorithm called wavelet d... The key to the wavelet based denoising teehniquea is how to manipulate the wavelet coefficients. By referring to the idea of Inclusive-OR in the design of circuits, this paper proposes a new algorithm called wavelet domain Inclusive-OR denoising algorithm(WDIDA), which distinguishes the wavelet coefficients belonging to image or noise by considering their phases and modulus maxima simultaneously. Using this new algorithm, the denoising effects are improved and the computation time is reduced. Furthermore, in order to enhance the edges of the image but not magnify noise, a contrast nonlinear enhancing algorithm is presented according to human visual properties. Compared with traditional enhancing algorithms, the algorithm that we proposed has a better noise reducing performanee , preserving edges and improving the visual quality of images. 展开更多
关键词 image enhancement wavelet transform human visual properties inclusive-OR.
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Method of Infrared Image Enhancement Based on Stationary Wavelet Transform
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作者 祁飞 李言俊 张科 《Defence Technology(防务技术)》 SCIE EI CAS 2008年第3期181-187,共7页
Aiming at the problem,i.e.infrared images own the characters of bad contrast ratio and fuzzy edges,a method to enhance the contrast of infrared image is given,which is based on stationary wavelet transform.After makin... Aiming at the problem,i.e.infrared images own the characters of bad contrast ratio and fuzzy edges,a method to enhance the contrast of infrared image is given,which is based on stationary wavelet transform.After making stationary wavelet transform to an infrared image,denoising is done by the proposed method of double-threshold shrinkage in detail coefficient matrixes that have high noisy intensity.For the approximation coefficient matrix with low noisy intensity,enhancement is done by the proposed method based on histogram.The enhanced image can be got by wavelet coefficient reconstruction.Furthermore,an evaluation criterion of enhancement performance is introduced.The results show that this algorithm ensures target enhancement and restrains additive Gauss white noise effectively.At the same time,its amount of calculation is small and operation speed is fast. 展开更多
关键词 信息处理 工程材料 图象增大 红外线图象
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融合双向感知Transformer与频率分析策略的图像修复
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作者 赵芷蔚 樊瑶 +1 位作者 郑黎志 余思运 《计算机应用研究》 北大核心 2025年第3期927-936,共10页
现有图像修复技术通常很难为缺失区域生成视觉上连贯的内容,其原因是高频内容质量下降导致频谱结构的偏差,以及有限的感受野无法有效建模输入特征之间的非局部关系。为解决上述问题,提出一种融合双向感知Transformer与频率分析策略的图... 现有图像修复技术通常很难为缺失区域生成视觉上连贯的内容,其原因是高频内容质量下降导致频谱结构的偏差,以及有限的感受野无法有效建模输入特征之间的非局部关系。为解决上述问题,提出一种融合双向感知Transformer与频率分析策略的图像修复网络(bidirect-aware Transformer and frequency analysis,BAT-Freq)。具体内容包括,设计了双向感知Transformer,用自注意力和n-gram的组合从更大的窗口捕获上下文信息,以全局视角聚合高级图像上下文;同时,提出了频率分析指导网络,利用频率分量来提高图像修复质量,并设计了混合域特征自适应对齐模块,有效地对齐并融合破损区域的混合域特征,提高了模型的细节重建能力。该网络实现空间域与频率域相结合的图像修复。在CelebA-HQ、Place2、Paris StreetView三个数据集上进行了大量的实验,结果表明,PSNR和SSIM分别平均提高了2.804 dB和8.13%,MAE和LPIPS分别平均降低了0.0158和0.0962。实验证明,该方法能够同时考虑语义结构的完善和纹理细节的增强,生成具有逼真感的修复结果。 展开更多
关键词 图像修复 生成对抗网络 小波变换 transformER
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基于小波变换和CNN-Transformer的超声甲状腺结节分割算法研究
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作者 郑水婧 杨君 +1 位作者 蔡瑜娇 文静 《陆军军医大学学报》 北大核心 2025年第14期1595-1601,共7页
目的 融合小波变换和CNN-Transformer构建甲状腺结节自动分割网络,以提升甲状腺结节超声影像的智能分割效率和精准度。方法 收集2023年5月至2024年2月在陆军军医大学第二附属医院超声科获取的1 371套甲状腺结节超声影像。经过预处理和... 目的 融合小波变换和CNN-Transformer构建甲状腺结节自动分割网络,以提升甲状腺结节超声影像的智能分割效率和精准度。方法 收集2023年5月至2024年2月在陆军军医大学第二附属医院超声科获取的1 371套甲状腺结节超声影像。经过预处理和标准化后,数据按照8∶1∶1的比例划分为训练集、验证集和测试集。以UNet为基础,将CNN与Swin-Transformer并联作为编码器,并在编码器与解码器之间插入小波变换模块,完成甲状腺结节分割网络的构建。使用准确率、IoU和Dice系数指标在收集的内部数据集上评估分割模型性能。结果 本研究最终在收集的1 371套超声甲状腺结节上进行验证,平均Dice系数达到79.63%,IoU达到67.3%。相较于UNet,分割准确度提升1.02%。其甲状腺结节分割结果位置准确,边缘平滑。分割出的甲状腺结节相比于其他方法分割出的结节,在轮廓形态上与医师的手工分割结果吻合度更高。相较于UNet方法,本方法对结节的纹理学习更加充分,规避了结节容易错误分割为周围组织的情况。结论 构建的基于小波变换和CNN-Transformer的分割模型精度优于UNet、Attention-UNet、UNetv2等UNet变种网络以及SAM Med2D分割大模型等先进分割方法,能有效应用于超声甲状腺结节的精确分割,提升医师的工作效率。 展开更多
关键词 甲状腺结节分割 小波变换 超声图像诊断 深度学习
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基于小波域的复数卷积和复数Transformer的轻量级MR图像重建方法
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作者 张晓华 练秋生 《电子学报》 北大核心 2025年第4期1221-1231,共11页
卷积神经网络能够从大规模数据中学习图像先验信息,在图像处理领域具有优异表现,但局部感受野使其难以捕捉像素间的远程依赖关系. Transformer网络架构具有全局感受野,在自然语言和高级视觉问题上表现出色,但其计算复杂度与图像尺寸的... 卷积神经网络能够从大规模数据中学习图像先验信息,在图像处理领域具有优异表现,但局部感受野使其难以捕捉像素间的远程依赖关系. Transformer网络架构具有全局感受野,在自然语言和高级视觉问题上表现出色,但其计算复杂度与图像尺寸的平方成正比,限制了其在高分辨图像处理任务中的应用.此外,许多MR(Magnetic Resonance)图像重建算法仅使用幅值数据或将实部和虚部分离到两个独立的通道作为网络输入,忽略了复值图像实部和虚部之间的相关性.本文提出基于复数卷积和复数Transformer的混合模块,既能利用卷积神经网络提取的高分辨率空间信息恢复MR图像细节,又能通过自注意力模块获取的全局上下文信息捕获远程特征.基于混合模块,结合小波变换进一步提出基于小波域的复数卷积和复数Transformer的轻量级MR图像重建算法.在Calgary-Campinas和fastMRI两个数据集上的实验结果表明,所提出的模型与四种具有代表性的MR图像重建算法相比,具有更高的重建性能和更少的资源消耗.源代码公开于https://github.com/zhangxh-qhd/WCCTNet. 展开更多
关键词 MR图像重建 小波变换 轻量级网络 复数卷积 复数transformer 感受野
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基于改进Vision Transformer的遥感图像分类研究
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作者 李宗轩 冷欣 +1 位作者 章磊 陈佳凯 《林业机械与木工设备》 2025年第6期31-35,共5页
通过遥感图像分类能够快速有效获取森林区域分布,为林业资源管理监测提供支持。Vision Transformer(ViT)凭借优秀的全局信息捕捉能力在遥感图像分类任务中广泛应用。但Vision Transformer在浅层特征提取时会冗余捕捉其他局部特征而无法... 通过遥感图像分类能够快速有效获取森林区域分布,为林业资源管理监测提供支持。Vision Transformer(ViT)凭借优秀的全局信息捕捉能力在遥感图像分类任务中广泛应用。但Vision Transformer在浅层特征提取时会冗余捕捉其他局部特征而无法有效捕获关键特征,并且Vision Transformer在将图像分割为patch过程中可能会导致边缘等细节信息的丢失,从而影响分类准确性。针对上述问题提出一种改进Vision Transformer,引入了STA(Super Token Attention)注意力机制来增强Vision Transformer对关键特征信息的提取并减少计算冗余度,还通过加入哈尔小波下采样(Haar Wavelet Downsampling)在减少细节信息丢失的同时增强对图像不同尺度局部和全局信息的捕获能力。通过实验在AID数据集上达到了92.98%的总体准确率,证明了提出方法的有效性。 展开更多
关键词 遥感图像分类 Vision transformer 哈尔小波下采样 STA注意力机制
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Multisensor image fusion algorithm using nonseparable wavelet frame transform 被引量:1
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作者 Li Zhenhua Jing Zhongliang Wang Hong Sun Shaoyuan 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2005年第4期728-732,共5页
A muitisensor image fusion algorithm is described using 2-dimensional nonseparable wavelet frame (NWF) transform. The source muitisensor images are first decomposed by the NWF transform. Then, the NWF transform coef... A muitisensor image fusion algorithm is described using 2-dimensional nonseparable wavelet frame (NWF) transform. The source muitisensor images are first decomposed by the NWF transform. Then, the NWF transform coefficients of the source images are combined into the composite NWF transform coefficients. Inverse NWF transform is performed on the composite NWF transform coefficients in order to obtain the intermediate fused image. Finally, intensity adjustment is applied to the intermediate fused image in order to maintain the dynamic intensity range. Experiment resuits using real data show that the proposed algorithm works well in muitisensor image fusion. 展开更多
关键词 MULTISENSOR image fusion image processing nonseparable wavelet frame transform.
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基于SVC和wavelet-transform的图像脉冲噪声自适应新滤波器 被引量:2
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作者 陆丽婷 朱嘉钢 《计算机应用》 CSCD 北大核心 2009年第2期477-479,共3页
利用小波变换可以检测信号奇异点的原理,提出了一种基于WT的脉冲噪声检测方法,并把这一方法与支持向量分类器SVC脉冲噪声检测方法相结合,提出了一种改进的SVC图像脉冲噪声滤波器。实验表明,这一改进的SVC脉冲噪声滤波器的滤波效果比原先... 利用小波变换可以检测信号奇异点的原理,提出了一种基于WT的脉冲噪声检测方法,并把这一方法与支持向量分类器SVC脉冲噪声检测方法相结合,提出了一种改进的SVC图像脉冲噪声滤波器。实验表明,这一改进的SVC脉冲噪声滤波器的滤波效果比原先的SVC滤波器有明显的改善。 展开更多
关键词 图像恢复 脉冲噪声 小波变换 支持向量分类
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小波分频自注意力Transformer图像去雨网络 被引量:3
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作者 方思严 刘斌 《计算机工程与应用》 CSCD 北大核心 2024年第6期259-273,共15页
针对视觉Transformer对高频信息捕捉能力弱以及目前许多图像去雨方法易丢失细节的问题,提出小波分频自注意力Transformer图像去雨网络(WFDST-Net)。小波分频自注意力Transformer(WFDST)作为WFDST-Net的主要模块,其利用不可分提升小波变... 针对视觉Transformer对高频信息捕捉能力弱以及目前许多图像去雨方法易丢失细节的问题,提出小波分频自注意力Transformer图像去雨网络(WFDST-Net)。小波分频自注意力Transformer(WFDST)作为WFDST-Net的主要模块,其利用不可分提升小波变换获取特征图的低频分量和高频分量,分别在低频和高频中进行自注意力交互,使模块从低频中学习恢复全局结构的能力,在高频中强化捕捉雨纹等线条细节的能力,增强对不同频域特征的建模能力。WFDST-Net采用U形架构并通过不可分提升小波变换获取多尺度特征,可在捕获不同形状高频雨纹的同时保证信息的完整性。相比其他图像去雨相关的Transformer,WFDST-Net具有更低的参数量。此外,提出VOCRain250数据集用于联合图像去雨和语义分割任务,该数据集比目前广泛使用的BDD150更具优势。实验表明,所提方法增强了视觉Transformer对不同频域信息的捕获能力,并在合成和真实数据集以及VOCRain250中的表现优于目前先进的去雨方法,能有效去除复杂雨纹并保留更多细节特征。 展开更多
关键词 图像去雨 transformER 自注意力 不可分提升小波 频域
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Image Fusion Algorithm Based on Spatial Frequency-Motivated Pulse Coupled Neural Networks in Nonsubsampled Contourlet Transform Domain 被引量:122
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作者 QU Xiao-Bo YAN Jing-Wen +1 位作者 XIAO Hong-Zhi ZHU Zi-Qian 《自动化学报》 EI CSCD 北大核心 2008年第12期1508-1514,共7页
Nonsubsampled contourlet 变换(NSCT ) 为图象提供灵活 multiresolution, anisotropy,和方向性的扩大。与原来的 contourlet 变换相比,它是移动不变的并且能在奇特附近克服 pseudo-Gibbs 现象。脉搏联合了神经网络(PCNN ) 是一个视... Nonsubsampled contourlet 变换(NSCT ) 为图象提供灵活 multiresolution, anisotropy,和方向性的扩大。与原来的 contourlet 变换相比,它是移动不变的并且能在奇特附近克服 pseudo-Gibbs 现象。脉搏联合了神经网络(PCNN ) 是一个视觉启发外皮的神经网络并且由全球联合和神经原的脉搏同步描绘。它为图象处理被证明合适并且成功地在图象熔化采用。在这份报纸, NSCT 与 PCNN 被联系并且在图象熔化使用了充分利用他们的特征。在 NSCT 领域的空间频率是输入与大开火的时间在 NSCT 领域激发 PCNN 和系数作为熔化图象的系数被选择。试验性的结果证明建议算法超过典型基于小浪,基于 contourlet,基于 PCNN,并且 contourlet-PCNN-based 熔化算法以客观标准和视觉外观。 展开更多
关键词 图像融合算法 空间频率 脉冲耦合神经网络 变换域 自动化系统
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Wavelet-Based Mixed-Resolution Coding Approach Incorporating with SPT for the Stereo Image
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作者 Xu, C. Zhang, Z. An, P. 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2001年第3期39-44,共6页
With the advances of display technology, three-dimensional(3-D) imaging systems are becoming increasingly popular. One way of stimulating 3-D perception is to use stereo pairs, a pair of images of the same scene acqui... With the advances of display technology, three-dimensional(3-D) imaging systems are becoming increasingly popular. One way of stimulating 3-D perception is to use stereo pairs, a pair of images of the same scene acquired from different perspectives. Since there is an inherent redundancy between the images of a stereo pairs, data compression algorithms should be employed to represent stereo pairs efficiently. The proposed techniques generally use block-based disparity compensation. In order to get the higher compression ratio, this paper employs the wavelet-based mixed-resolution coding technique to incorporate with SPT-based disparity-compensation to compress the stereo image data. The mixed-resolution coding is a perceptually justified technique that is achieved by presenting one eye with a low-resolution image and the other with a high-resolution image. Psychophysical experiments show that the stereo image pairs with one high-resolution image and one low-resolution image provide almost the same stereo depth to that of a stereo image with two high-resolution images. By combining the mixed-resolution coding and SPT-based disparity-compensation techniques, one reference (left) high-resolution image can be compressed by a hierarchical wavelet transform followed by vector quantization and Huffman encoder. After two level wavelet decompositions, for the low-resolution right image and low-resolution left image, subspace projection technique using the fixed block size disparity compensation estimation is used. At the decoder, the low-resolution right subimage is estimated using the disparity from the low-resolution left subimage. A full-size reconstruction is obtained by upsampling a factor of 4 and reconstructing with the synthesis low pass filter. Finally, experimental results are presented, which show that our scheme achieves a PSNR gain (about 0.92dB) as compared to the current block-based disparity compensation coding techniques. 展开更多
关键词 Data reduction DECODING image coding image compression image reconstruction Imaging techniques Motion compensation Motion estimation Optical resolving power Projection systems Stereo vision wavelet transforms
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An Adaptive Method of Image CompressionBased on Wavelet Analysis
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作者 Xu Hao Dept. of Biomedical Engineering, Shanghai Jiaotong University, 200030, P. R. China Yu Jun Dept. of Computer and Engineering, Hangzhou University of Commerce, 310035, P. R. China Yao Min Dept. of Computer, Zhejiang University, Hangzhou 310028, P. R. 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2001年第1期53-58,共6页
Through research for image compression based on wavelet analysis in recent years, we put forward an adaptive wavelet decomposition strategy. Whether sub-images are to be decomposed or not are decided by their energy d... Through research for image compression based on wavelet analysis in recent years, we put forward an adaptive wavelet decomposition strategy. Whether sub-images are to be decomposed or not are decided by their energy defined by certain criterion. Then we derive the adaptive wavelet decomposition tree (AWDT) and the way of adjustable compression ratio. According to the feature of AWDT, this paper also deals with the strategies which are used to handle different sub-images in the procedure of quantification and coding of the wavelet coefficients. Through experiments, not only the algorithm in the paper can adapt to various images, but also the quality of recovered image is improved though compression ratio is higher and adjustable. When their compression ratios are near, the quality of subjective vision and PSNR of the algorithm are better than those of JPEG algorithm. 展开更多
关键词 Adaptive algorithms image coding image quality Signal to noise ratio wavelet transforms
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No-reference image quality assessment based on AdaBoost_BP neural network in wavelet domain 被引量:2
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作者 YAN Junhua BAI Xuehan +4 位作者 ZHANG Wanyi XIAO Yongqi CHATWIN Chris YOUNG Rupert BIRCH Phil 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2019年第2期223-237,共15页
Considering the relatively poor robustness of quality scores for different types of distortion and the lack of mechanism for determining distortion types, a no-reference image quality assessment(NR-IQA) method based o... Considering the relatively poor robustness of quality scores for different types of distortion and the lack of mechanism for determining distortion types, a no-reference image quality assessment(NR-IQA) method based on the Ada Boost BP neural network in the wavelet domain(WABNN) is proposed. A 36-dimensional image feature vector is constructed by extracting natural scene statistics(NSS) features and local information entropy features of the distorted image wavelet sub-band coefficients in three scales. The ABNN classifier is obtained by learning the relationship between image features and distortion types. The ABNN scorer is obtained by learning the relationship between image features and image quality scores. A series of contrast experiments are carried out in the laboratory of image and video engineering(LIVE) database and TID2013 database. Experimental results show the high accuracy of the distinguishing distortion type, the high consistency with subjective scores and the high robustness of the method for distorted images. Experiment results also show the independence of the database and the relatively high operation efficiency of this method. 展开更多
关键词 image quality assessment (IQA) AdaBoost_BP neural network (ABNN) wavelet transform natural SCENE STATISTICS (NSS) local information ENTROPY
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Infrared Image Denoising Based on Single-wavelet and Multiwavelets
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作者 FEIPei-yan GUOBao-long 《红外技术》 CSCD 北大核心 2005年第3期235-239,共5页
Deviation is essential to classic soft threshold denoising in wavelet domain. Texture features ofnoised image denoised by wavelet transform were weakened. Gibbs effect is distinct at edges of image.Image blurs compari... Deviation is essential to classic soft threshold denoising in wavelet domain. Texture features ofnoised image denoised by wavelet transform were weakened. Gibbs effect is distinct at edges of image.Image blurs comparing with original noised image. To solve the questions, a blind denoising method basedon single-wavelet transform and multiwavelets transform was proposed. The method doesn’t depend onsize of image and deviation to determine threshold of wavelet coefficients, which is different from classicalsoft-threshold denoising in wavelet domain. Moreover, the method is good for many types of noise. Gibbseffect disappeared with this method, edges of image are preserved well, and noise is smoothed andrestrained effectively. 展开更多
关键词 单波转换 多波转换 图像降噪 处理效果 红外线
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基于小波去噪与同态滤波的带钢缺陷图像增强
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作者 李恒 崔莹 +1 位作者 赵磊 刘辉 《沈阳工业大学学报》 北大核心 2025年第3期369-376,共8页
【目的】钢铁工业作为我国经济发展的支柱产业之一,在整个制造业中具有无可取代的地位。热轧带钢具有包容覆盖能力强、便于加工、节省材料等优点,是生产其他钢产品的主要原材料,提高带钢产品的表面质量是提高钢铁产品质量的重要环节。... 【目的】钢铁工业作为我国经济发展的支柱产业之一,在整个制造业中具有无可取代的地位。热轧带钢具有包容覆盖能力强、便于加工、节省材料等优点,是生产其他钢产品的主要原材料,提高带钢产品的表面质量是提高钢铁产品质量的重要环节。由于受到生产、加工、拍摄等多种因素的影响,原始带钢表面缺陷图像亮度不均匀、缺陷区域与非缺陷区域对比度较低,导致缺陷信息不够清晰、不便于检测。针对上述问题提出了一种基于小波去噪与改进同态滤波相结合的带钢表面缺陷图像增强算法。【方法】算法采用二级小波变换将原始图像分解为低频分量和高频分量。低频分量包含原图的主要信息,对低频分量进行增强处理以提升图像的整体效果。分别采用改进的同态滤波算法以及限制对比度自适应直方图均衡化(contrast limited adaptive histogram equalization,CLAHE)算法对低频分量进行增强,在均衡图像亮度的同时提高了整体对比度,并将上述两种算法处理后的低频图像基于适当的权重进行图像融合,得到增强后的低频分量。而高频分量包含图像的细节信息以及噪声,对高频分量使用了改进的阈值函数提升去噪效果,并较好地保留了边缘细节。将处理后的低频分量和高频分量通过小波重构得到最终的增强图像。【结果】通过主观视觉评价和客观评价指标对算法处理结果进行多组对比分析,与其他算法结果相比,经本文算法增强后的各类带钢表面缺陷图像亮度均明显提升,且整体亮度保持均衡,同时提高了对比度,图像的纹理细节和缺陷信息也更加明显。采用通用指标均方误差(mean square error,MSE)、峰值信噪比(peak signal to noise ratio,PSNR)和图像信息熵(image entropy,IE)对算法进行评估,综合分析各参数可知,本文算法对提高对比度、降低噪声效果较为显著,同时保留了更多的细节信息,失真度较小。【结论】实验结果表明,本文算法有效改善了带钢表面缺陷图像亮度不均匀的问题,在提高了整体对比度的同时提升了去噪效果,使缺陷信息和边缘细节得到显著增强,并且适用于多种类型的带钢表面缺陷检测。 展开更多
关键词 小波变换 同态滤波 阈值去噪 图像增强 带钢 表面缺陷 对比度自适应直方图均衡化 小波重构
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基于分频式生成对抗网络的非成对水下图像增强
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作者 牛玉贞 张凌昕 +2 位作者 兰杰 许瑞 柯逍 《电子学报》 北大核心 2025年第2期527-544,共18页
增强水下图像质量对水下作业领域的发展具有重要意义.现有的水下图像增强方法通常基于成对的水下图像和参考图像进行训练,然而实际获取与水下图像对应的参考图像比较困难,相比之下获得非成对高质量水下图像或者陆上图像较为容易.此外,... 增强水下图像质量对水下作业领域的发展具有重要意义.现有的水下图像增强方法通常基于成对的水下图像和参考图像进行训练,然而实际获取与水下图像对应的参考图像比较困难,相比之下获得非成对高质量水下图像或者陆上图像较为容易.此外,现有的水下图像增强方法很难同时针对各种失真类型进行图像增强.为了避免对成对训练数据的依赖和进一步降低获得训练数据的难度,并应对多样的水下图像失真类型,本文提出了一种基于分频式生成对抗网络(Frequency-Decomposed Generative Adversarial Network,FD-GAN)的非成对水下图像增强方法,并在此基础上设计了高低频双分支生成器用于重建高质量水下增强图像.具体来说,本文引入特征级别的小波变换将特征分为低频和高频部分,并基于循环一致性生成对抗网络对低频和高频部分区分处理.其中,低频分支采用结合低频注意力机制的编码-解码器结构实现对图像颜色和亮度的增强,高频分支则采用并行的高频注意力机制对各高频分量进行增强,从而实现对图像细节的恢复.在多个标准水下图像数据集上的实验结果表明,本文提出的方法在使用非成对的高质量水下图像和引入部分陆上图像的情况下,均能有效生成高质量的水下增强图像,且有效性和泛化性均优于当前主流的水下图像增强方法. 展开更多
关键词 水下图像增强 生成对抗网络 小波变换 注意力机制 高低频双分支生成器
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知识迁移引导的空频双域联合去雾网络
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作者 杨燕 梁皓博 林雷 《湖南大学学报(自然科学版)》 北大核心 2025年第4期16-26,共11页
目前一些基于CNN的方法在去雾方面有着不错的性能,但网络鲁棒性欠佳.这主要归因于雾霾分布复杂和数据集难以收集,导致去雾过程中纹理细节丢失严重并且在小规模数据集上存在严重的过拟合问题.为了解决上述问题,提出了空频联合的双分支结... 目前一些基于CNN的方法在去雾方面有着不错的性能,但网络鲁棒性欠佳.这主要归因于雾霾分布复杂和数据集难以收集,导致去雾过程中纹理细节丢失严重并且在小规模数据集上存在严重的过拟合问题.为了解决上述问题,提出了空频联合的双分支结构.上分支捕获更多的纹理细节,利用三级小波变换在频域中获取特征;下分支提升网络泛化能力,采用域迁移方法在空域中提供额外的知识先验,以Res2Net作为该分支的核心部分.最后,本文在NH-HAZE数据集上对模型进行训练,在I-HAZE和NTIRE 2023数据集上进行泛化能力测试.此外,为了保证实验的公平性,本文对所有对比算法也采用NH-HAZE数据集进行训练.实验结果表明,本文网络在细节纹理恢复和泛化能力方面获得了显著提升. 展开更多
关键词 图像去雾 域迁移 小波变换 注意力机制 深度学习
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融合光谱子空间和模型导向的高光谱图像超分辨率研究
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作者 刘丛 梅海闽 《小型微型计算机系统》 北大核心 2025年第2期373-380,共8页
针对现有的基于深度学习的高光谱图像超分辨率重建方法无法通用于不同波段的高光谱图像以及缺乏可解释性等问题.提出一种融合光谱子空间映射和模型引导的高光谱图像超分辨率算法.首先,使用光谱子空间分解将原始图像映射到低维空间中,既... 针对现有的基于深度学习的高光谱图像超分辨率重建方法无法通用于不同波段的高光谱图像以及缺乏可解释性等问题.提出一种融合光谱子空间映射和模型引导的高光谱图像超分辨率算法.首先,使用光谱子空间分解将原始图像映射到低维空间中,既可以增加光谱间的相关性又可以去除不同波段高光谱图像对网络的限制.其次,使用小波变换将稀疏矩阵分解为高频特征和低频特征,挖掘图像中的纹理和结构等高频信息.再者,以超分辨率重建模型为指导,将ADMM分解后的子模型优化展开为深度网络的形式,增加了深度网络设计的可解释性.最终,使用逆小波变换后将重建的系数矩阵映射到原始的全谱空间中.实验表明,提出的方法在定量指标和主观视觉方面均表现优异. 展开更多
关键词 高光谱图像 超分辨率 模型引导 光谱子空间 小波变换
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