2019
DOI: 10.3390/s19020304
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PSDSD-A Superpixel Generating Method Based on Pixel Saliency Difference and Spatial Distance for SAR Images

Abstract: Superpixel methods are widely used in the processing of synthetic aperture radar (SAR) images. In recent years, a number of superpixel algorithms for SAR images have been proposed, and have achieved acceptable results despite the inherent speckle noise of SAR images. However, it is still difficult for existing algorithms to obtain satisfactory results in the inhomogeneous edge and texture areas. To overcome those problems, we propose a superpixel generating method based on pixel saliency difference and spatial… Show more

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Cited by 11 publications
(2 citation statements)
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References 34 publications
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“…Wang et al implemented a neighbor superpixels difference-based ship detection approach based on the Fisher vector [16]. Li et al conducted the traditional CFAR at the superpixel level to reduce the influence of sea noises [17]. Xie et al proposed a novel saliency map named the Gaussian kernel function weighted local contrast measure (GLCM), and conducted superpixel segmentation with a modified distance measure [18].…”
Section: Introductionmentioning
confidence: 99%
“…Wang et al implemented a neighbor superpixels difference-based ship detection approach based on the Fisher vector [16]. Li et al conducted the traditional CFAR at the superpixel level to reduce the influence of sea noises [17]. Xie et al proposed a novel saliency map named the Gaussian kernel function weighted local contrast measure (GLCM), and conducted superpixel segmentation with a modified distance measure [18].…”
Section: Introductionmentioning
confidence: 99%
“…In the mainstream automatic recognition of Superpixel segmentation, Xie et al, proposed a method of super pixel generation for SAR images based on significant differences and spatial distance (Xie et al, 2019). Zhu et al, proposed a region merging method (Zhu et al, 2016).…”
Section: Introductionmentioning
confidence: 99%