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Performance evaluation of wavelet scattering network in image texture classification in various color spaces 被引量:2
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作者 伍家松 姜龙玉 +2 位作者 韩旭 Lotfi Senhadji 舒华忠 《Journal of Southeast University(English Edition)》 EI CAS 2015年第1期46-50,共5页
The optimized color space is searched by using the wavelet scattering network in the KTH_TIPS_COL color image database for image texture classification. The effect of choosing the color space on the classification acc... The optimized color space is searched by using the wavelet scattering network in the KTH_TIPS_COL color image database for image texture classification. The effect of choosing the color space on the classification accuracy is investigated by converting red green blue (RGB) color space to various other color spaces. The results show that the classification performance generally changes to a large degree when performing color texture classification in various color spaces, and the opponent RGB-based wavelet scattering network outperforms other color spaces-based wavelet scattering networks. Considering that color spaces can be changed into each other, therefore, when dealing with the problem of color texture classification, converting other color spaces to the opponent RGB color space is recommended before performing the wavelet scattering network. 展开更多
关键词 wavelet scattering network color texture classification color spaces opponent mechanism
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A Study on the Influence of Luminance L* in the L*a*b* Color Space during Color Segmentation 被引量:1
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作者 Rodolfo Alvarado-Cervantes Edgardo M. Felipe-Riveron +1 位作者 Vladislav Khartchenko Oleksiy Pogrebnyak 《Journal of Computer and Communications》 2016年第3期28-34,共7页
In this paper an evaluation of the influence of luminance L* at the L*a*b* color space during color segmentation is presented. A comparative study is made between the behavior of segmentation in color images using onl... In this paper an evaluation of the influence of luminance L* at the L*a*b* color space during color segmentation is presented. A comparative study is made between the behavior of segmentation in color images using only the Euclidean metric of a* and b* and an adaptive color similarity function defined as a product of Gaussian functions in a modified HSI color space. For the evaluation synthetic images were particularly designed to accurately assess the performance of the color segmentation. The testing system can be used either to explore the behavior of a similarity function (or metric) in different color spaces or to explore different metrics (or similarity functions) in the same color space. From the results is obtained that the color parameters a* and b* are not independent of the luminance parameter L* as one might initially assume. 展开更多
关键词 color Image Segmentation CIELAB color space L*a*b* color space color Metrics color Segmentation Evaluation Synthetic color Image Generation
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Deer Body Adaptive Threshold Segmentation Algorithm Based on Color Space 被引量:6
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作者 Yuheng Sun Ye Mu +4 位作者 Qin Feng Tianli Hu He Gong Shijun Li Jing Zhou 《Computers, Materials & Continua》 SCIE EI 2020年第8期1317-1328,共12页
In large-scale deer farming image analysis,K-means or maximum between-class variance(Otsu)algorithms can be used to distinguish the deer from the background.However,in an actual breeding environment,the barbed wire or... In large-scale deer farming image analysis,K-means or maximum between-class variance(Otsu)algorithms can be used to distinguish the deer from the background.However,in an actual breeding environment,the barbed wire or chain-link fencing has a certain isolating effect on the deer which greatly interferes with the identification of the individual deer.Also,when the target and background grey values are similar,the multiple background targets cannot be completely separated.To better identify the posture and behaviour of deer in a deer shed,we used digital image processing to separate the deer from the background.To address the problems mentioned above,this paper proposes an adaptive threshold segmentation algorithm based on color space.First,the original image is pre-processed and optimized.On this basis,the data are enhanced and contrasted.Next,color space is used to extract the several backgrounds through various color channels,then the adaptive space segmentation of the extracted part of the color space is performed.Based on the segmentation effect of the traditional Otsu algorithm,we designed a comparative experiment that divided the four postures of turning,getting up,lying,and standing,and successfully separated multiple target deer from the background.Experimental results show that compared with K-means,Otsu and hue saturation value(HSV)+K-means,this method is better in performance and accuracy for adaptive segmentation of deer in artificial breeding scenes and can be used to separate artificially cultivated deer from their backgrounds.Both the subjective and objective aspects achieved good segmentation results.This article lays a foundation for the effective identification of abnormal behaviour in sika deer. 展开更多
关键词 Artificial breeding color space deer body recognition image segmentation K-MEANS multi-target recognition OTSU
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Support Vector Regression Based Color Image Restoration in YUV Color Space 被引量:2
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作者 黎明 杨杰 苏中义 《Journal of Shanghai Jiaotong university(Science)》 EI 2010年第1期31-35,共5页
A support vector regression(SVR) based color image restoration algorithm is proposed.The test color images are firstly mapped into the YUV color space,and then SVR is applied to build up a theoretical model between th... A support vector regression(SVR) based color image restoration algorithm is proposed.The test color images are firstly mapped into the YUV color space,and then SVR is applied to build up a theoretical model between the degraded images and the original one.Performance comparisons of the proposed algorithm versus traditional filtering algorithms are given.Experimental results show that the proposed algorithm has better performance than traditional filtering algorithms and has less computation time than iterative blind deconvolution algorithm. 展开更多
关键词 color image restoration support vector regression (SVR) color space
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Automatic Defect Detection and Grading of Single-Color Fruits Using HSV (Hue, Saturation, Value) Color Space 被引量:1
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作者 Saeideh Gorji Kandi 《Journal of Life Sciences》 2010年第7期39-45,共7页
Machine vision has been recently utilized for quality control of food and agricultural products, which was traditionally done by manual inspection. The present study was an attempt for automatic defect detection and s... Machine vision has been recently utilized for quality control of food and agricultural products, which was traditionally done by manual inspection. The present study was an attempt for automatic defect detection and sorting of some single-color fruits such as banana and plum. Fruit images were captured using a color digital camera with capturing direction of zero degree and under illuminant D65. It was observed that growing decay and time-aging made surface color changes in bruised parts of the object. 3D RGB and HSV color vectors as well as a single channel like H (hue), S (saturation), V (value) and grey scale images were applied for color quantization of the object. Results showed that there was a distinct threshold in the histogram of the S channel of images which can be applied to separate the object from its background. Moreover, the color change via the defect and time-aging is correctly distinguishable in the hue channel image. The effect of illumination, gloss and shadow of 3D image processing is less noticeable for hue data in comparison to saturation and value. The value of H channel was quantized to five groups based on the difference between each pixel value and the H value of a healthy object. The percentage of different degree of defects can be computed and used for grading the fruits. 展开更多
关键词 Machine vision HSV color space FRUIT GRADING defect detection.
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Circle Detection Based on HSI Color Space 被引量:1
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作者 MAOXia LIXing-xin XUEYu-li 《Computer Aided Drafting,Design and Manufacturing》 2005年第1期36-40,共5页
A method based on HSI color space is presented to solve the problem of circle detection from color images. In terms of the evaluation to the edge detection method based on intensity, the edge detection based on hue is... A method based on HSI color space is presented to solve the problem of circle detection from color images. In terms of the evaluation to the edge detection method based on intensity, the edge detection based on hue is chosen to process the color image, and the simplified calculation of hue transform is discussed. Then the algorithm of circle detection based on Canny edge detection is proposed. Due to the dispersive distribution of the detected result, Hough transformation and template smooth are used in circle detection, and the proposed method gives a quite good result. 展开更多
关键词 HSI color space edge detection circle detection Hough transformation
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Color Measurement of Segmented Printed Fabric Patterns in Lab Color Space from RGB Digital Images 被引量:7
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作者 Charles Kumah Ning Zhang +1 位作者 Rafiu King Raji Ruru Pan 《Journal of Textile Science and Technology》 2019年第1期1-18,共18页
Colors of textile materials are the first parameter of quality evaluated by consumers and a key component considered in selecting printed fabric. In the textiles industry, digital printed fabric analysis is one of the... Colors of textile materials are the first parameter of quality evaluated by consumers and a key component considered in selecting printed fabric. In the textiles industry, digital printed fabric analysis is one of the basic elements in successfully utilizing a color mechanism scheme and objectively evaluating fabric color alterations. Precise color measurement, however, is mostly used in sample analysis and quality inspection which help to produce reproducible or similar product. It is important that for quality inspection, the color of the product should be measured as a necessary requirement of quality control whether the product is to be accepted or not. Presented in this study is an unsupervised segmentation of printed fabrics patterns using mean shift algorithm and color measurements over the segmented regions of printed fabric patterns. The results established a consistent and reliable color measurement of multiple color patterns and appearance with the established range without any interactions. 展开更多
关键词 color Measurement LAB color space RGB color space Region of INTEREST (ROI) Quality Control
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Convolutional Neural Network Image Classification Based on Different Color Spaces
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作者 Zixiang Xian Rubing Huang +1 位作者 Dave Towey Chuan Yue 《Tsinghua Science and Technology》 2025年第1期402-417,共16页
Although Convolutional Neural Networks(CNNs)have achieved remarkable success in image classification,most CNNs use image datasets in the Red-Green-Blue(RGB)color space(one of the most commonly used color spaces).The e... Although Convolutional Neural Networks(CNNs)have achieved remarkable success in image classification,most CNNs use image datasets in the Red-Green-Blue(RGB)color space(one of the most commonly used color spaces).The existing literature regarding the influence of color space use on the performance of CNNs is limited.This paper explores the impact of different color spaces on image classification using CNNs.We compare the performance of five CNN models with different convolution operations and numbers of layers on four image datasets,each converted to nine color spaces.We find that color space selection can significantly affect classification accuracy,and that some classes are more sensitive to color space changes than others.Different color spaces may have different expression abilities for different image features,such as brightness,saturation,hue,etc.To leverage the complementary information from different color spaces,we propose a pseudo-Siamese network that fuses two color spaces without modifying the network architecture.Our experiments show that our proposed model can outperform the single-color-space models on most datasets.We also find that our method is simple,flexible,and compatible with any CNN and image dataset. 展开更多
关键词 color space Convolutional Neural Network(CNN) image classification pseudo-Siamese network
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Automatic greenhouse pest recognition based on multiple color space features 被引量:4
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作者 Zhankui Yang Wenyong Li +1 位作者 Ming Li Xinting Yang 《International Journal of Agricultural and Biological Engineering》 SCIE EI CAS 2021年第2期188-195,共8页
Recognition and counting of greenhouse pests are important for monitoring and forecasting pest population dynamics.This study used image processing techniques to recognize and count whiteflies and thrips on a sticky t... Recognition and counting of greenhouse pests are important for monitoring and forecasting pest population dynamics.This study used image processing techniques to recognize and count whiteflies and thrips on a sticky trap located in a greenhouse environment.The digital images of sticky traps were collected using an image-acquisition system under different greenhouse conditions.If a single color space is used,it is difficult to segment the small pests correctly because of the detrimental effects of non-uniform illumination in complex scenarios.Therefore,a method that first segments object pests in two color spaces using the Prewitt operator in I component of the hue-saturation-intensity(HSI)color space and the Canny operator in the B component of the Lab color space was proposed.Then,the segmented results for the two-color spaces were summed and achieved 91.57%segmentation accuracy.Next,because different features of pests contribute differently to the classification of pest species,the study extracted multiple features(e.g.,color and shape features)in different color spaces for each segmented pest region to improve the recognition performance.Twenty decision trees were used to form a strong ensemble learning classifier that used a majority voting mechanism and obtains 95.73%recognition accuracy.The proposed method is a feasible and effective way to process greenhouse pest images.The system accurately recognized and counted pests in sticky trap images captured under real greenhouse conditions. 展开更多
关键词 ensemble learning classifier greenhouse sticky trap automated pest recognition and counting HSI and Lab color spaces multiple color space features
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Tongue diagnosis based on hue-saturation value color space: controlled study of tongue appearance in patients treated with percutaneous coronary intervention for coronary heart disease 被引量:1
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作者 Yumo Xia Qingsheng Wang +3 位作者 Xiao Feng Xin’ang Xiao Yiqin Wang Zhaoxia Xu 《Intelligent Medicine》 EI CSCD 2023年第4期252-257,共6页
Objective To analyze the characteristics of tongue imaging color parameters in patients treated with percutaneous coronary intervention(PCI)and non-PCI for coronary atherosclerotic heart disease(CHD),and to observethe... Objective To analyze the characteristics of tongue imaging color parameters in patients treated with percutaneous coronary intervention(PCI)and non-PCI for coronary atherosclerotic heart disease(CHD),and to observethe effects of PCI on the tongue images of patients as a basis for the clinical diagnosis and treatment of patientswith CHD.Methods This study used a retrospective cross-sectional survey to analyze tongue photographs and medicalhistory information from 204 patients with CHD between November 2018 and July 2020.Tongue images ofeach subject were obtained using the Z-BOX Series traditional Chinese medicine(TCM)intelligent diagnosisinstruments,the SMX System 2.0 was used to transform the image data into parameters in the HSV color space,and finally the parameters of the tongue image between patients in the PCI-treated and non-PCI-treated groupsfor CHD were analyzed.Results Among the 204 patients,112 were in the non-PCI treatment group(38 men and 74 women;average age of(68.76±9.49)years),92 were in the PCI treatment group(66 men and 26 women;average age of(66.02±10.22)years).In the PCI treatment group,the H values of the middle and tip of the tongue and the overall coating of thetongue were lower(P<0.05),while the V values of the middle,tip,both sides of the tongue,the whole tongueand the overall coating of the tongue were higher(P<0.05).Conclusion The color parameters of the tongue image could reflect the physical state of patients treated withPCI,which may provide a basis for the clinical diagnosis and treatment of patients with CHD. 展开更多
关键词 Objective evaluation Tongue diagnosis Coronary heart disease Percutaneous coronary intervention Hue-saturation value color space Traditional Chinese medicine syndromes
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Image Segmentation by Hierarchical Spatial and Color Spaces Clustering
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作者 YU Wei 《The Journal of China Universities of Posts and Telecommunications》 EI CSCD 2005年第4期70-74,共5页
Image segmentation, as a basic building block for many high-level image analysis problems, has attracted many research attentions over years. Existing approaches, however, are mainly focusing on the clustering analysi... Image segmentation, as a basic building block for many high-level image analysis problems, has attracted many research attentions over years. Existing approaches, however, are mainly focusing on the clustering analysis in the single channel information, i.e. , either in color or spatial space, which may lead to unsatisfactory segmentation performance. Considering the spatial and color spaces jointly, this paper propases a new hierarchical image segmentation algorithm, which alternately cluster.s the image regions in color and spatial spaces in a fine to coarse manner. Without losing the perceptual consistence, the proposed algorithm achieves the segmentation result using only very few number of colors according to user specification. 展开更多
关键词 image segmentation clustering analysis spatial space color space
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Multi-color space threshold segmentation and self-learning k-NN algorithm for surge test EUT status identification
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作者 Jian HUANG Gui-xiong LIU 《Frontiers of Mechanical Engineering》 SCIE CSCD 2016年第3期311-315,共5页
The identification of targets varies in different surge tests. A multi-color space threshold segmentation and self-learning k-nearest neighbor algorithm (k-NN) for equipment under test status identification was prop... The identification of targets varies in different surge tests. A multi-color space threshold segmentation and self-learning k-nearest neighbor algorithm (k-NN) for equipment under test status identification was proposed after using feature matching to identify equipment status had to train new patterns every time before testing. First, color space (L*a*b*, hue saturation lightness (HSL), hue saturation value (HSV)) to segment was selected according to the high luminance points ratio and white luminance points ratio of the image. Second, the unknown class sample Sr was classified by the k-NN algorithm with training set T~ according to the feature vector, which was formed from number ofpixels, eccentricity ratio, compact- ness ratio, and Euler's numbers. Last, while the classification confidence coefficient equaled k, made Sr as one sample ofpre-training set Tz'. The training set Tz increased to Tz+1 by Tz' if Tz' was saturated. In nine series of illuminant, indicator light, screen, and disturbances samples (a total of 21600 frames), the algorithm had a 98.65% identification accuracy, also selected five groups of samples to enlarge the training set from To to T5 by itself. Keywords multi-color space, k-nearest neighbor algorithm (k-NN), self-learning, surge test 展开更多
关键词 multi-color space k-nearest neighbor algorithm (k-NN) SELF-LEARNING surge test
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Neural Network Method for Colorimetry Calibration of Video Cameras 被引量:2
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作者 周双全 赵达尊 《Journal of Beijing Institute of Technology》 EI CAS 2000年第1期31-36,共6页
To transfer the color data from a device (video camera) dependent color space into a device? independent color space, a multilayer feedforward network with the error backpropagation (BP) learning rule, was regarded ... To transfer the color data from a device (video camera) dependent color space into a device? independent color space, a multilayer feedforward network with the error backpropagation (BP) learning rule, was regarded as a nonlinear transformer realizing the mapping from the RGB color space to CIELAB color space. A variety of mapping accuracy were obtained with different network structures. BP neural networks can provide a satisfactory mapping accuracy in the field of color space transformation for video cameras. 展开更多
关键词 color space transformation neural network color video camera
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New Color-Difference Formula Based on CIECAM97s 被引量:1
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作者 宦晖 李为 赵达尊 《Journal of Beijing Institute of Technology》 EI CAS 2001年第2期149-152,共4页
To deduce a new color difference formula based on CIE 1997 Color Appearance Model(CIECAM97s), a color space J a 1 b 1 is first constructed with color appearance descriptors J,a,b in CIECAM97s. The new f... To deduce a new color difference formula based on CIE 1997 Color Appearance Model(CIECAM97s), a color space J a 1 b 1 is first constructed with color appearance descriptors J,a,b in CIECAM97s. The new formula is then deduced in the space and named CDF CIECAM97s. The factors for lightness, chroma and hue correction in the formula are derived by linear regression according to BFD? CP data sets. It is found by statistical analysis that CDF CIECAM97s is in closer accordance with the visual assessments when compared with CMC(1∶1), CIE94 and CIE L *a *b * color difference formulae. Based on color appearance model, the new color difference formula can be used to predict color difference perception in a varity of different viewing conditions. 展开更多
关键词 CIECAM97s color difference formulae color space
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Energy-Saving Effect of Discolored Decorative Boards in Flexible Interior Space
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作者 ZENG Wenhai JIANG Liting +2 位作者 WANG Chen YU Xiaoqiang ZHOU Hongbing 《Journal of Landscape Research》 2017年第5期19-21,共3页
Green,energy conservation and environmental protection have increasingly become the theme of the sustained and healthy development of cities against the background of new urbanization,which indicates that the problem ... Green,energy conservation and environmental protection have increasingly become the theme of the sustained and healthy development of cities against the background of new urbanization,which indicates that the problem of building energy consumption has received growing attention.This paper explores the impact of energy-saving decorations in flexible interior space on energy-saving effect of buildings so as to broaden the horizon of energy conservation in building,thereby alleviating the problem of energy shortage in China. 展开更多
关键词 Discolored decorative board Flexible space Energy-saving effect color design
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基于颜色空间阈值分割的石英流体包裹体自动识别算法及其软件实现
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作者 赵毅 谭琦 +2 位作者 郭理想 何跃 刘磊 《中国矿业》 北大核心 2025年第7期306-314,共9页
高纯石英作为半导体、光纤通信和激光技术等高科技产业的关键原材料,其品质直接决定了石英制品的性能和应用效果。其中,石英颗粒内部的微米级流体包裹体不仅影响原料的纯度等级,还对材料熔制过程中产生气泡缺陷具有显著影响。然而,传统... 高纯石英作为半导体、光纤通信和激光技术等高科技产业的关键原材料,其品质直接决定了石英制品的性能和应用效果。其中,石英颗粒内部的微米级流体包裹体不仅影响原料的纯度等级,还对材料熔制过程中产生气泡缺陷具有显著影响。然而,传统方法在量化石英颗粒包裹体含量方面存在效率低、精度不足等问题,难以满足高纯石英原料大规模筛选和精细化评价的需求。为解决上述问题,本研究设计了一种基于颜色空间阈值分割的自动识别算法。通过偏光显微镜捕捉同一视场下石英包裹体油浸片的偏光暗场和透光亮场图片,利用偏光暗场图片中的YCbCr颜色通道范围分割并提取石英颗粒。随后,将透光亮场图片与分割结果叠加,用于识别石英颗粒内部的流体包裹体,并统计其面积占比,实现包裹体特征的量化分析。基于该算法,开发了一套采用B/S架构的软件系统,集成了石英颗粒特征参数提取、流体包裹体占比计算及数据可视化等功能。为验证软件和算法的有效性,本研究设计了不同样本容量下的计算时间和结果稳定性评估实验。结果显示,计算时间随样本容量呈线性增长,样本容量越大,计算时间的波动越明显。在稳定性方面,以石英颗粒像素面积为参考指标,当样本容量超过30组时,粒度分布曲线的中位数和偏度值逐渐趋于收敛。此外,通过对两组包裹体含量差异显著的石英样品进行验证,结果表明,本方法能够准确识别和量化石英内部包裹体的面积占比,与人工观察结果高度一致。本研究为高纯石英的精细化评价与筛选提供了高效、精准的技术解决方案,同时也为其他矿物材料中包裹体的识别与定量分析提供了借鉴。未来工作将结合深度学习技术,进一步提升算法的鲁棒性和泛化能力。 展开更多
关键词 高纯石英 包裹体 图像分割 YCBCR颜色空间 定量分析
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基于细节增强和多颜色空间学习的联合监督水下图像增强算法
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作者 胡锐 程家亮 胡伏原 《现代电子技术》 北大核心 2025年第1期23-28,共6页
由于水下特殊的成像环境,水下图像往往具有严重的色偏雾化等现象。因此文中根据水下光学成像模型设计了一种新的增强算法,即基于细节增强和多颜色空间学习的无监督水下图像增强算法(UUIE-DEMCSL)。该算法设计了一种基于多颜色空间的增... 由于水下特殊的成像环境,水下图像往往具有严重的色偏雾化等现象。因此文中根据水下光学成像模型设计了一种新的增强算法,即基于细节增强和多颜色空间学习的无监督水下图像增强算法(UUIE-DEMCSL)。该算法设计了一种基于多颜色空间的增强网络,将输入转换为多个颜色空间(HSV、RGB、LAB)进行特征提取,并将提取到的特征融合,使得网络能学习到更多的图像特征信息,从而对输入图像进行更为精确的增强。最后,UUIE-DEMCSL根据水下光学成像模型和联合监督学习框架进行设计,使其更适合水下图像增强任务的应用场景。在不同数据集上大量的实验结果表明,文中提出的UUIE-DEMCSL算法能生成视觉质量良好的水下增强图像,且各项指标具有显著的优势。 展开更多
关键词 水下图像增强 多颜色空间学习 无监督学习 细节增强 特征提取 特征融合
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基于Lab颜色空间改进U—Net的稻田杂草分割方法
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作者 王靖 姜文刚 +1 位作者 程耀 钱伟 《中国农机化学报》 北大核心 2025年第5期148-154,共7页
在水稻种植中,杂草是影响水稻产量的重要因素。无人机在智慧农业领域应用日益广泛。针对无人机在图像采集时发生抖动以及稻田杂草拍摄时产生运动模糊的情况,通过在分割网络前增加超分辨率模块来解决图片不清晰的问题;为提高图像分割准确... 在水稻种植中,杂草是影响水稻产量的重要因素。无人机在智慧农业领域应用日益广泛。针对无人机在图像采集时发生抖动以及稻田杂草拍摄时产生运动模糊的情况,通过在分割网络前增加超分辨率模块来解决图片不清晰的问题;为提高图像分割准确率,提出将图像由RGB转化成Lab颜色空间,从而增加水稻和杂草在计算机视觉上的区分度,同时将水稻与杂草的Lab数值加权作为损失函数参数,融合更多的原图信息,提高网络训练精度;在U—Net中增加局部注意力机制,关注图像中重要的部分,减少无关区域的影响,加强对水稻杂草图像的分割能力,提升网络性能。试验结果表明,改进后网络图像分割的准确率达98.1%,精确率达95.4%,召回率达96.9%,平均交并比mIoU达84.2%。 展开更多
关键词 稻田杂草 神经网络 超分辨率 Lab颜色空间 注意力机制
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图像目标抗遮挡视觉差补偿算法仿真
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作者 赵海燕 杜丽娟 +1 位作者 刘琨 肖琳 《计算机仿真》 2025年第1期244-248,共5页
由于场景复杂、光线变化等因素的影响,图像中的目标物体可能被遮挡,导致视差的失真和误差,从而影响对图像目标的精准跟踪。为了有效解决上述问题,提出图像目标抗遮挡视觉差补偿算法。将图像转移到HSI颜色空间中,检测并消除图像中存在的... 由于场景复杂、光线变化等因素的影响,图像中的目标物体可能被遮挡,导致视差的失真和误差,从而影响对图像目标的精准跟踪。为了有效解决上述问题,提出图像目标抗遮挡视觉差补偿算法。将图像转移到HSI颜色空间中,检测并消除图像中存在的噪声;将去噪后的图像输入YOLOv3网络中,检测并定位目标区域;根据人眼视觉特性建立二维视觉差异直方图,结合LDR算法对目标区域展开增强处理,通过灰度补偿方法对目标区域展开灰度补偿,避免过度增强现象的发生,实现目标抗遮挡视觉差补偿。实验结果表明,所提算法的图像去噪效果好、目标定位精度高、补偿效果好、补偿效率高。 展开更多
关键词 颜色空间 目标定位 二维视觉差异直方图 视觉差补偿
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基于YOLOv8-HSV的隧道螺栓锈蚀检测及等级判定
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作者 武晓春 张恒骏 谭磊 《浙江大学学报(工学版)》 北大核心 2025年第10期2144-2153,2220,共11页
针对盾构隧道扫描图像中锈蚀螺栓目标小、存在遮挡、扫描图像尺寸大的问题,提出改进YOLOv8锈蚀螺栓检测模型.将焦点调制模块引入YOLOv8主干网络,颈部升级为4级别特征融合的加权双向特征金字塔网络(BiFPN),提升小目标的特征提取能力;检... 针对盾构隧道扫描图像中锈蚀螺栓目标小、存在遮挡、扫描图像尺寸大的问题,提出改进YOLOv8锈蚀螺栓检测模型.将焦点调制模块引入YOLOv8主干网络,颈部升级为4级别特征融合的加权双向特征金字塔网络(BiFPN),提升小目标的特征提取能力;检测头添加分离增强注意力模块(SEAM),有效解决螺栓的遮挡问题;检测阶段借助切片辅助推理(SAHI),实现对大尺寸扫描图像的高效处理.提出基于HSV(色相、饱和度、明度)色域分割的锈蚀等级判定方法,利用锈蚀区域与背景颜色上的差异,对检测到的螺栓进行锈蚀区域分割,划分锈蚀等级并将等级信息还原到扫描图像中.实验结果表明,改进YOLOv8锈蚀螺栓检测模型的平均精度均值为95.0%,模型大小为3.9MB,帧率为83.3帧/s,实现了对锈蚀螺栓的高性能检测. 展开更多
关键词 盾构隧道 螺栓锈蚀 YOLOv8 等级判定 HSV色域分割
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