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Research on Euclidean Algorithm and Reection on Its Teaching
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作者 ZHANG Shaohua 《应用数学》 北大核心 2025年第1期308-310,共3页
In this paper,we prove that Euclid's algorithm,Bezout's equation and Divi-sion algorithm are equivalent to each other.Our result shows that Euclid has preliminarily established the theory of divisibility and t... In this paper,we prove that Euclid's algorithm,Bezout's equation and Divi-sion algorithm are equivalent to each other.Our result shows that Euclid has preliminarily established the theory of divisibility and the greatest common divisor.We further provided several suggestions for teaching. 展开更多
关键词 Euclid's algorithm Division algorithm Bezout's equation
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An Algorithm for Cloud-based Web Service Combination Optimization Through Plant Growth Simulation
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作者 Li Qiang Qin Huawei +1 位作者 Qiao Bingqin Wu Ruifang 《系统仿真学报》 北大核心 2025年第2期462-473,共12页
In order to improve the efficiency of cloud-based web services,an improved plant growth simulation algorithm scheduling model.This model first used mathematical methods to describe the relationships between cloud-base... In order to improve the efficiency of cloud-based web services,an improved plant growth simulation algorithm scheduling model.This model first used mathematical methods to describe the relationships between cloud-based web services and the constraints of system resources.Then,a light-induced plant growth simulation algorithm was established.The performance of the algorithm was compared through several plant types,and the best plant model was selected as the setting for the system.Experimental results show that when the number of test cloud-based web services reaches 2048,the model being 2.14 times faster than PSO,2.8 times faster than the ant colony algorithm,2.9 times faster than the bee colony algorithm,and a remarkable 8.38 times faster than the genetic algorithm. 展开更多
关键词 cloud-based service scheduling algorithm resource constraint load optimization cloud computing plant growth simulation algorithm
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A Class of Parallel Algorithm for Solving Low-rank Tensor Completion
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作者 LIU Tingyan WEN Ruiping 《应用数学》 北大核心 2025年第4期1134-1144,共11页
In this paper,we established a class of parallel algorithm for solving low-rank tensor completion problem.The main idea is that N singular value decompositions are implemented in N different processors for each slice ... In this paper,we established a class of parallel algorithm for solving low-rank tensor completion problem.The main idea is that N singular value decompositions are implemented in N different processors for each slice matrix under unfold operator,and then the fold operator is used to form the next iteration tensor such that the computing time can be decreased.In theory,we analyze the global convergence of the algorithm.In numerical experiment,the simulation data and real image inpainting are carried out.Experiment results show the parallel algorithm outperform its original algorithm in CPU times under the same precision. 展开更多
关键词 Tensor completion Low-rank CONVERGENCE Parallel algorithm
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Multi-QoS routing algorithm based on reinforcement learning for LEO satellite networks 被引量:1
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作者 ZHANG Yifan DONG Tao +1 位作者 LIU Zhihui JIN Shichao 《Journal of Systems Engineering and Electronics》 2025年第1期37-47,共11页
Low Earth orbit(LEO)satellite networks exhibit distinct characteristics,e.g.,limited resources of individual satellite nodes and dynamic network topology,which have brought many challenges for routing algorithms.To sa... Low Earth orbit(LEO)satellite networks exhibit distinct characteristics,e.g.,limited resources of individual satellite nodes and dynamic network topology,which have brought many challenges for routing algorithms.To satisfy quality of service(QoS)requirements of various users,it is critical to research efficient routing strategies to fully utilize satellite resources.This paper proposes a multi-QoS information optimized routing algorithm based on reinforcement learning for LEO satellite networks,which guarantees high level assurance demand services to be prioritized under limited satellite resources while considering the load balancing performance of the satellite networks for low level assurance demand services to ensure the full and effective utilization of satellite resources.An auxiliary path search algorithm is proposed to accelerate the convergence of satellite routing algorithm.Simulation results show that the generated routing strategy can timely process and fully meet the QoS demands of high assurance services while effectively improving the load balancing performance of the link. 展开更多
关键词 low Earth orbit(LEO)satellite network reinforcement learning multi-quality of service(QoS) routing algorithm
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Research on three-dimensional attack area based on improved backtracking and ALPS-GP algorithms of air-to-air missile
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作者 ZHANG Haodi WANG Yuhui HE Jiale 《Journal of Systems Engineering and Electronics》 2025年第1期292-310,共19页
In the field of calculating the attack area of air-to-air missiles in modern air combat scenarios,the limitations of existing research,including real-time calculation,accuracy efficiency trade-off,and the absence of t... In the field of calculating the attack area of air-to-air missiles in modern air combat scenarios,the limitations of existing research,including real-time calculation,accuracy efficiency trade-off,and the absence of the three-dimensional attack area model,restrict their practical applications.To address these issues,an improved backtracking algorithm is proposed to improve calculation efficiency.A significant reduction in solution time and maintenance of accuracy in the three-dimensional attack area are achieved by using the proposed algorithm.Furthermore,the age-layered population structure genetic programming(ALPS-GP)algorithm is introduced to determine an analytical polynomial model of the three-dimensional attack area,considering real-time requirements.The accuracy of the polynomial model is enhanced through the coefficient correction using an improved gradient descent algorithm.The study reveals a remarkable combination of high accuracy and efficient real-time computation,with a mean error of 91.89 m using the analytical polynomial model of the three-dimensional attack area solved in just 10^(-4)s,thus meeting the requirements of real-time combat scenarios. 展开更多
关键词 air combat three-dimensional attack area improved backtracking algorithm age-layered population structure genetic programming(ALPS-GP) gradient descent algorithm
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A hybrid genetic algorithm to the program optimization model based on a heterogeneous network
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作者 CHEN Hang DOU Yajie +3 位作者 CHEN Ziyi JIA Qingyang ZHU Chen CHEN Haoxuan 《Journal of Systems Engineering and Electronics》 2025年第4期994-1005,共12页
Project construction and development are an impor-tant part of future army designs.In today’s world,intelligent war-fare and joint operations have become the dominant develop-ments in warfare,so the construction and ... Project construction and development are an impor-tant part of future army designs.In today’s world,intelligent war-fare and joint operations have become the dominant develop-ments in warfare,so the construction and development of the army need top-down,top-level design,and comprehensive plan-ning.The traditional project development model is no longer suf-ficient to meet the army’s complex capability requirements.Projects in various fields need to be developed and coordinated to form a joint force and improve the army’s combat effective-ness.At the same time,when a program consists of large-scale project data,the effectiveness of the traditional,precise mathe-matical planning method is greatly reduced because it is time-consuming,costly,and impractical.To solve above problems,this paper proposes a multi-stage program optimization model based on a heterogeneous network and hybrid genetic algo-rithm and verifies the effectiveness and feasibility of the model and algorithm through an example.The results show that the hybrid algorithm proposed in this paper is better than the exist-ing meta-heuristic algorithm. 展开更多
关键词 program optimization heterogeneous network genetic algorithm portfolio selection.
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Topological optimization of metamaterial absorber based on improved estimation of distribution algorithm
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作者 TAO Shifei LIU Beichen +2 位作者 LIU Sixing WU Fan WANG Hao 《Journal of Systems Engineering and Electronics》 2025年第3期634-641,共8页
An improved estimation of distribution algorithm(IEDA)is proposed in this paper for efficient design of metamaterial absorbers.This algorithm establishes a probability model through the selected dominant groups and sa... An improved estimation of distribution algorithm(IEDA)is proposed in this paper for efficient design of metamaterial absorbers.This algorithm establishes a probability model through the selected dominant groups and samples from the model to obtain the next generation,avoiding the problem of building-blocks destruction caused by crossover and mutation.Neighboring search from artificial bee colony algorithm(ABCA)is introduced to enhance the local optimization ability and improved to raise the speed of convergence.The probability model is modified by boundary correction and loss correction to enhance the robustness of the algorithm.The proposed IEDA is compared with other intelligent algorithms in relevant references.The results show that the proposed IEDA has faster convergence speed and stronger optimization ability,proving the feasibility and effectiveness of the algorithm. 展开更多
关键词 METAMATERIAL topological optimization estimation of distribution algorithm
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Bayesian-based ant colony optimization algorithm for edge detection
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作者 YU Yongbin ZHONG Yuanjingyang +6 位作者 FENG Xiao WANG Xiangxiang FAVOUR Ekong ZHOU Chen CHENG Man WANG Hao WANG Jingya 《Journal of Systems Engineering and Electronics》 2025年第4期892-902,共11页
Ant colony optimization(ACO)is a random search algorithm based on probability calculation.However,the uninformed search strategy has a slow convergence speed.The Bayesian algorithm uses the historical information of t... Ant colony optimization(ACO)is a random search algorithm based on probability calculation.However,the uninformed search strategy has a slow convergence speed.The Bayesian algorithm uses the historical information of the searched point to determine the next search point during the search process,reducing the uncertainty in the random search process.Due to the ability of the Bayesian algorithm to reduce uncertainty,a Bayesian ACO algorithm is proposed in this paper to increase the convergence speed of the conventional ACO algorithm for image edge detection.In addition,this paper has the following two innovations on the basis of the classical algorithm,one of which is to add random perturbations after completing the pheromone update.The second is the use of adaptive pheromone heuristics.Experimental results illustrate that the proposed Bayesian ACO algorithm has faster convergence and higher precision and recall than the traditional ant colony algorithm,due to the improvement of the pheromone utilization rate.Moreover,Bayesian ACO algorithm outperforms the other comparative methods in edge detection task. 展开更多
关键词 ant colony optimization(ACO) Bayesian algorithm edge detection transfer function.
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An improved genetic algorithm for causal discovery
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作者 MAO Tengjiao BU Xianjin +2 位作者 CAI Chunxiao LU Yue DU Jing 《Journal of Systems Engineering and Electronics》 2025年第3期768-777,共10页
The learning algorithms of causal discovery mainly include score-based methods and genetic algorithms(GA).The score-based algorithms are prone to searching space explosion.Classical GA is slow to converge,and prone to... The learning algorithms of causal discovery mainly include score-based methods and genetic algorithms(GA).The score-based algorithms are prone to searching space explosion.Classical GA is slow to converge,and prone to falling into local optima.To address these issues,an improved GA with domain knowledge(IGADK)is proposed.Firstly,domain knowledge is incorporated into the learning process of causality to construct a new fitness function.Secondly,a dynamical mutation operator is introduced in the algorithm to accelerate the convergence rate.Finally,an experiment is conducted on simulation data,which compares the classical GA with IGADK with domain knowledge of varying accuracy.The IGADK can greatly reduce the number of iterations,populations,and samples required for learning,which illustrates the efficiency and effectiveness of the proposed algorithm. 展开更多
关键词 genetic algorithm(GA) causal discovery convergence rate fitness function mutation operator
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Multi-platform collaborative MRC-PSO algorithm for anti-ship missile path planning
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作者 LIU Gang GUO Xinyuan +2 位作者 HUANG Dong CHEN Kezhong LI Wu 《Journal of Systems Engineering and Electronics》 2025年第2期494-509,共16页
To solve the problem of multi-platform collaborative use in anti-ship missile (ASM) path planning, this paper pro-posed multi-operator real-time constraints particle swarm opti-mization (MRC-PSO) algorithm. MRC-PSO al... To solve the problem of multi-platform collaborative use in anti-ship missile (ASM) path planning, this paper pro-posed multi-operator real-time constraints particle swarm opti-mization (MRC-PSO) algorithm. MRC-PSO algorithm utilizes a semi-rasterization environment modeling technique and inte-grates the geometric gradient law of ASMs which distinguishes itself from other collaborative path planning algorithms by fully considering the coupling between collaborative paths. Then, MRC-PSO algorithm conducts chunked stepwise recursive evo-lution of particles while incorporating circumvent, coordination, and smoothing operators which facilitates local selection opti-mization of paths, gradually reducing algorithmic space, accele-rating convergence, and enhances path cooperativity. Simula-tion experiments comparing the MRC-PSO algorithm with the PSO algorithm, genetic algorithm and operational area cluster real-time restriction (OACRR)-PSO algorithm, which demon-strate that the MRC-PSO algorithm has a faster convergence speed, and the average number of iterations is reduced by approximately 75%. It also proves that it is equally effective in resolving complex scenarios involving multiple obstacles. More-over it effectively addresses the problem of path crossing and can better satisfy the requirements of multi-platform collabora-tive path planning. The experiments are conducted in three col-laborative operation modes, namely, three-to-two, three-to-three, and four-to-two, and the outcomes demonstrate that the algorithm possesses strong universality. 展开更多
关键词 anti-ship missiles multi-platform collaborative path planning particle swarm optimization(PSO)algorithm
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A tracking algorithm based on adaptive Kalman filter with carrier-to-noise ratio estimation under solar radio bursts interference
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作者 ZHU Xuefen LI Ang +2 位作者 LUO Yimei LIN Mengying TU Gangyi 《Journal of Systems Engineering and Electronics》 2025年第4期880-891,共12页
Solar radio burst(SRB)is one of the main natural interference sources of Global Positioning System(GPS)signals and can reduce the signal-to-noise ratio(SNR),directly affecting the tracking performance of GPS receivers... Solar radio burst(SRB)is one of the main natural interference sources of Global Positioning System(GPS)signals and can reduce the signal-to-noise ratio(SNR),directly affecting the tracking performance of GPS receivers.In this paper,a tracking algorithm based on the adaptive Kalman filter(AKF)with carrier-to-noise ratio estimation is proposed and compared with the conventional second-order phase-locked loop tracking algo-rithms and the improved Sage-Husa adaptive Kalman filter(SHAKF)algorithm.It is discovered that when the SRBs occur,the improved SHAKF and the AKF with carrier-to-noise ratio estimation enable stable tracking to loop signals.The conven-tional second-order phase-locked loop tracking algorithms fail to track the receiver signal.The standard deviation of the carrier phase error of the AKF with carrier-to-noise ratio estimation out-performs 50.51%of the improved SHAKF algorithm,showing less fluctuation and better stability.The proposed algorithm is proven to show more excellent adaptability in the severe envi-ronment caused by the SRB occurrence and has better tracking performance. 展开更多
关键词 solar radio burst(SRB) global positioning system(GPS) adaptive Kalman filter(AKF) tracking algorithm.
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à Trous小波在卫星遥测数据递归预测中的应用 被引量:6
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作者 孙振明 姜兴渭 +1 位作者 王晓锋 徐敏强 《南京理工大学学报》 EI CAS CSCD 北大核心 2004年第6期606-611,共6页
该文提出了一种基于劋Trous算法的小波递归预测方法?迷げ馑惴ú捎梦蕹槿±肷⑿〔ū浠坏膭ぃ裕颍铮酰笏惴?,可以逐点把时间序列分解为与原序列长度相同的小波系数 ,适合在递归预测中应用 ,弥补了Mallat算法不能实时调整模... 该文提出了一种基于劋Trous算法的小波递归预测方法?迷げ馑惴ú捎梦蕹槿±肷⑿〔ū浠坏膭ぃ裕颍铮酰笏惴?,可以逐点把时间序列分解为与原序列长度相同的小波系数 ,适合在递归预测中应用 ,弥补了Mallat算法不能实时调整模型参数的不足。预测卫星电源母线电压数据表明 ,该方法满足预测卫星遥测数据的要求。 展开更多
关键词 卫星遥测数据 à trous小波 预测 递归 时间序列
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基于à trous算法的MEMS陀螺仪随机漂移建模 被引量:1
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作者 赵世峰 张海 范耀祖 《中国惯性技术学报》 EI CSCD 2007年第1期96-99,共4页
为了对微小型飞行器上的MIMU(微惯性测量单元)的随机漂移进行补偿,在比较了Mallat算法与à trous算法之后,基于小波变换与多尺度分析方法,提出了多尺度时间序列建模方法,它充分利用了à trous算法的快速性与时间平移不变性,将M... 为了对微小型飞行器上的MIMU(微惯性测量单元)的随机漂移进行补偿,在比较了Mallat算法与à trous算法之后,基于小波变换与多尺度分析方法,提出了多尺度时间序列建模方法,它充分利用了à trous算法的快速性与时间平移不变性,将MEMS陀螺仪随机漂移进行多尺度分解。对各尺度上分解得到的信号进行重建,并对重建得到的各个信号进行时间序列建模。将各尺度时间序列模型的预测输出的和作为陀螺仪的随机噪声估计,对陀螺仪的随机漂移进行补偿。最后的实际数据建模表明该建模方法运算量小、建模速度快、精度高、模型适用性强,有很强的实际应用价值。 展开更多
关键词 多尺度分析 á trous算法 时间序列建模 随机噪声
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基于 Trous-contourlet变换的红外与可见光图像融合算法 被引量:1
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作者 柴奇 王黎明 杨伟 《激光与红外》 CAS CSCD 北大核心 2009年第4期435-438,共4页
提出了一种基于à trous-contourlet变换的图像融合新算法。首先利用à trous-contourlet变换对图像进行多分辨率分解,然后针对变换域中各带通方向高频子带系数的选择,提出了一种应用区域能量进行图像匹配度计算的融合规则,并... 提出了一种基于à trous-contourlet变换的图像融合新算法。首先利用à trous-contourlet变换对图像进行多分辨率分解,然后针对变换域中各带通方向高频子带系数的选择,提出了一种应用区域能量进行图像匹配度计算的融合规则,并将其应用于红外图像与可见光图像的融合。实验结果表明,该算法能够有效融合红外与可见光图像,与其他方法相比较,取得了更好的融合效果。 展开更多
关键词 图像融合 à trous—contourlet变换 区域能量 平移不变性
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一种改进的àtrous小波融合方法 被引量:4
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作者 王倩 刘洋 贾永红 《测绘通报》 CSCD 北大核心 2009年第8期10-12,共3页
针对遥感高分辨率全色影像同低分辨率多光谱影像的融合,提出将区域方差和区域梯度相结合的融合规则,应用于影像经àtrous小波变换产生的各分解层高频分量融合,获得融合的各分解层高频分量,然后进行àtrous小波逆变换,最终得到... 针对遥感高分辨率全色影像同低分辨率多光谱影像的融合,提出将区域方差和区域梯度相结合的融合规则,应用于影像经àtrous小波变换产生的各分解层高频分量融合,获得融合的各分解层高频分量,然后进行àtrous小波逆变换,最终得到融合的高分辨率多光谱影像。试验结果证明,改进的方法比常规àtrous小波融合方法性能更好。 展开更多
关键词 àtrous小波变换 影像融合 区域方差 区域梯度
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基于a’trous小波与广义HIS变换的SAR与多光谱影像融合 被引量:4
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作者 黄登山 杨敏华 +1 位作者 姚学恒 尹军 《遥感信息》 CSCD 2011年第1期9-13,123,共6页
为了提高SAR影像的解译水平,避免通常基于小波变换的融合方法造成的SAR影像信息损失,本文提出一种基于a’trous小波与广义HIS变换的SAR与多光谱影像融合方法,在将多光谱影像转换到HIS空间后,应用a’trous小波对I分量进行分解,通过加法... 为了提高SAR影像的解译水平,避免通常基于小波变换的融合方法造成的SAR影像信息损失,本文提出一种基于a’trous小波与广义HIS变换的SAR与多光谱影像融合方法,在将多光谱影像转换到HIS空间后,应用a’trous小波对I分量进行分解,通过加法的形式将多光谱影像的高频分量信息与SAR影像信息集成,并根据解译的需要,通过改变阈值来控制对多光谱影像信息的集成幅度。实验选取一组TM多光谱影像与ERS-2SAR影像进行融合研究,并将融合结果与另一小波融合方法融合结果进行视觉比较与统计分析。结果表明,另一小波融合方法的融合结果与本文方法融合结果阈值τ=1时的结果接近,而本文方法却可以根据不同的应用需要,在完整保留了SAR影像信息的基础上,通过调节多光谱影像信息的注入程度,为获取更能满足解译需要的SAR融合影像提供更多选择,拥有更好的鲁棒性。 展开更多
关键词 遥感 SAR影像 多光谱影像 影像融合 a’trous小波 HIS
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基于àtrous小波分解的贝叶斯SAR图像滤波
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作者 陈亮 秦前清 《国土资源遥感》 CSCD 2005年第4期20-23,共4页
合成孔径雷达(SAR)在成像过程中由于回波的相干性而产生斑点噪声,严重干扰了图像的自动解译。根据SAR图像斑点噪声的特殊性,首先对影像进行对数变换,并使用àtrous运算法则对变换后的影像进行分解,然后通过贝叶斯原理估计修正小波... 合成孔径雷达(SAR)在成像过程中由于回波的相干性而产生斑点噪声,严重干扰了图像的自动解译。根据SAR图像斑点噪声的特殊性,首先对影像进行对数变换,并使用àtrous运算法则对变换后的影像进行分解,然后通过贝叶斯原理估计修正小波系数。与自适应局域统计滤波和基于M allat分解的滤波算法进行分析比较,结果表明,该方法在噪声滤除和边缘保持方面效果较好。 展开更多
关键词 àtrous运算法则 贝叶斯估计 SAR图像 斑点滤波
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基于对比度à trous小波的Contourlet变换图像水印算法
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作者 孔兵 王娟 《郑州轻工业学院学报(自然科学版)》 CAS 2010年第6期100-103,共4页
提出将基于对比度的à trous小波代替Contourlet变换中的拉普拉斯金字塔(LP)变换,实现对图像的多尺度分析:对变换后的低频区域分块,计算各个分块的噪声可见性函数(NVF)值,对选出的一系列值较小的分块嵌入水印.实验结果表明,水印算... 提出将基于对比度的à trous小波代替Contourlet变换中的拉普拉斯金字塔(LP)变换,实现对图像的多尺度分析:对变换后的低频区域分块,计算各个分块的噪声可见性函数(NVF)值,对选出的一系列值较小的分块嵌入水印.实验结果表明,水印算法具有较好的视觉效果,同时对滤波、JPEG有损压缩、噪声等攻击具有较好的鲁棒性. 展开更多
关键词 数字水印 对比度à trous小波Contourlet变换 噪声可见性函数 W矩阵置乱 奇异值分解
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基于两通道不可分à trous-Curvelet变换的遥感图像融合(英文)
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作者 陈大可 王珂 《系统仿真学报》 EI CAS CSCD 北大核心 2008年第19期5199-5203,共5页
以同一场景多光谱和全色图像为研究对象,提出了一种基于两通道不可分à trous-Curvelet变换的遥感图像融合算法。算法首先结合à trous小波变换和Curvelet变换的优点,构造出两通道不可分à trous-Curvelet变换方法,并将其与... 以同一场景多光谱和全色图像为研究对象,提出了一种基于两通道不可分à trous-Curvelet变换的遥感图像融合算法。算法首先结合à trous小波变换和Curvelet变换的优点,构造出两通道不可分à trous-Curvelet变换方法,并将其与IHS变换相结合对图像进行多分辨率分解,然后依据高、低频层系数的特点采用不同的加权融合规则进行融合,最后用IHS逆变换得到融合图像。实验结果表明,相比于常用的基于小波变换等融合算法,新算法在光谱信息的保持和空间信息的增强上取得了更好的效果。 展开更多
关键词 图像融合 两通道不可分a trous-Curvelet变换 IHS变换 加权融合规则
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一种基于à trous算法的遥感图像模糊集增强算法 被引量:5
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作者 黄允浒 吐尔洪江.阿布都克力木 +2 位作者 唐泉 王鑫 刘芳园 《计算机应用与软件》 北大核心 2018年第3期187-192,246,共7页
针对遥感图像在处理过程中噪声放大引起的对比度差,边缘细节模糊和目标与背景区分不明显等问题,提出一种结合àtrous算法和改进的模糊对比度增强的遥感图像增强算法。该算法一方面利用直方图均衡,提高图像整体对比度;另一方面根据... 针对遥感图像在处理过程中噪声放大引起的对比度差,边缘细节模糊和目标与背景区分不明显等问题,提出一种结合àtrous算法和改进的模糊对比度增强的遥感图像增强算法。该算法一方面利用直方图均衡,提高图像整体对比度;另一方面根据图像在二进小波域表达的冗余性,不会在图像预处理时平滑掉某些重要信息。其平移不变性避免了传统图像增强算法中产生的伪吉布斯现象,有效避免由于非线性变换引起的视觉形变。模糊对比度增强了图像的纹理和边缘信息,从局部增大图像对比度。与当前一些典型的增强方法相比,实验结果表明所提算法的几种客观评价指标明显优于其他算法,能有效提升图像的对比度,抑制伪吉布斯现象,而且图像视觉效果也有明显改善。 展开更多
关键词 遥感图像 àtrous算法 改进的模糊对比度增强 平移不变性
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