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首页> 外文期刊>Electronic Letters on Computer Vision and Image Analysis: ELCVIA >A Hybrid Particle Swarm Optimization with Affine Transformation Approach for Cloud Free Multi-Temporal Image Registration
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A Hybrid Particle Swarm Optimization with Affine Transformation Approach for Cloud Free Multi-Temporal Image Registration

机译:基于仿射变换的混合粒子群算法用于无云多时相图像配准

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An image registration is the major part of the image categorization and cluster formation in multi temporal image processing. The images are affected by the different factors such as cloud shadow, water level, building shadows etc. In this paper, an enhanced registration process and the cloud removal technique is proposed for image enhancement. The Daemons, Combined Registration and Segmentation (CRS) approach, Markov Random Field (MRF) approach and Mutual Information (MI) based approaches results in more computational complexity, minimum edge preservation measure (QAB/F) and Mutual Information in image registration. In order to maximize the quality of edge preservation measure and MI with minimum computational time, this paper proposes Particle Swarm Optimization (PSO) based affine transformation technique. The proposed techniques measure and compare the computation time against the number of pixels of an image with the existing methods of CRS and MRF for the number of images. The comparative analysis of QAB/F and MI with the traditional methods of Clock Point –Least Square (CP-LS) and the Multi-Focus Image Fusion (MFIF) and Discrete Wavelet Transform (DWT) is presented to confirm the effective performance. The simulation results of the proposed transformation for registration process confirms the effective image registration in the multi-temporal image processing.
机译:图像配准是多时间图像处理中图像分类和聚类形成的主要部分。图像受云影,水位,建筑物阴影等不同因素的影响。本文提出了一种增强的配准过程和云去除技术来进行图像增强。守护程序,组合配准和分段(CRS)方法,基于马尔可夫随机场(MRF)的方法和基于互信息(MI)的方法导致图像配准中的计算复杂性更高,最小边缘保留度量(QAB / F)和互信息。为了以最小的计算时间来最大化边缘保留度量和MI的质量,本文提出了一种基于粒子群优化(PSO)的仿射变换技术。所提出的技术利用针对图像数量的现有CRS和MRF方法来测量并比较针对图像像素数量的计算时间。通过对传统的时钟点-最小二乘法(CP-LS),多焦点图像融合(MFIF)和离散小波变换(DWT)进行QAB / F和MI的比较分析,以确认其有效性能。所提出的用于配准过程的变换的仿真结果证实了在多时间图像处理中的有效图像配准。

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