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FEATURE EXTRACTION FOR HIGH-RESOLUTION IMAGERIES BASED ON THE HUMAN VISUAL PERCEPTION

机译:基于人类视觉感知的高分辨率成像特征提取

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The wide applications of high spatial resolution remotely sensed images are calling for more and more accurately classified imageries. However, feature extraction, as a significant processing in classification procedures, fails to fully extract the spatial features from high-resolution imageries, and that causes inaccuracy in various applications. On the basis of investigating and modeling the mechanism of human visual perception to take advantage of the excellent ability of understanding images, we propose a novel feature extracting approach in this paper based on the shape adaptive neighborhood (SAN), and present scientific analysis towards the approach. Firstly, we summarized the previous research on the spatial feature extraction for high-resolution images, as well as on the human visual perception. Then the concept of SAN was proposed to model the visual perception and was applied to extract spatial features from high-resolution imageries. Finally, experiments on a SPOT-5 imagery using the proposed approach will be conducted, to do the classification for the Land Use / Land Cover (LULC) application. Additionally, quantitative assessment and analysis were also given on the overall precision and the Kappa coefficient of the classification results. Experimental results show that the SAN-based feature extraction approach is of good help for improving the accuracy of classification by using both supervised and unsupervised methods. Especially, classification with unsupervised procedure is noticeably improved, which will greatly forward its application in specific cases.
机译:高空间分辨率的广泛应用遥感图像正在呼唤越来越准确的分类仪。然而,特征提取作为分类过程中的显着处理,不能完全从高分辨率成像中提取空间特征,并且在各种应用中导致不准确。在调查和模拟人类视觉感知的机制,以了解图像的能力出色的优势的基础上,我们提出了对一种新的特征提取基于形状自适应邻(SAN)本文的方法,和现在的科学分析方法。首先,我们总结了先前关于高分辨率图像的空间特征提取的研究,以及人类视觉感知。然后提出了SAN的概念来模拟视觉感知,并应用于从高分辨率成像中提取空间特征。最后,将进行使用拟议方法的Spot-5图像的实验,进行土地使用/陆地覆盖(LULC)应用程序的分类。另外,还给出了定量评估和分析,对整体精度和分类结果的Kappa系数。实验结果表明,基于SAN的特征提取方法对于通过使用监督和无人监督的方法来提高分类的准确性很好。特别是,具有无监督程序的分类明显改善,这将大大转发其在特定情况下的应用。

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