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首页> 外文期刊>Far East Journal of Electronics and Communications >MEDICAL ANGIO-IMAGE ENHANCEMENT USING ADAPTIVE FRACTIONAL DIFFERENTIAL FILTER
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MEDICAL ANGIO-IMAGE ENHANCEMENT USING ADAPTIVE FRACTIONAL DIFFERENTIAL FILTER

机译:自适应分数阶微分滤波器的医学血管图像增强

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Blood vessel diagnosis and screening procedures help physicians affirm or reduce the presence of vascular disorders. Blood vessel enhancement in medical angio-images is an essential preprocessing step for further handling of blood vessel related issues. Better the enhancement, more accurate is the recognition of abnormal condition pertaining to vessels. In this paper, an adaptive fractional differential filter (AFDF) that adaptively enhances the pixels belonging to vessellike structures is proposed. Initially, Hessian multiscale eigen analysis is used to filter the vessel-like structures from the entire image. It is then refined using thresholding and morphological operations. From the refined results, a piecewise fractional differential function is formed so as to separately enhance weak and strong vessels/background. The fractional differential mask developed based on the Grunwald-Letnikov (G-L) definition uses this fractional function to adjust the fractional order of the vesselness measure. Finally, filtering operation is performed on the image by convolving with this mask. It is found that this algorithm effectively enhances the vessel like structures in both the retinal fundus image and angiogram of cerebral vasculature while preserving the texture and background structures.
机译:血管诊断和筛查程序可帮助医生确认或减少血管疾病的存在。医学血管图像中血管的增强是进一步处理血管相关问题的重要预处理步骤。更好地增强功能,更准确地识别与血管有关的异常状况。在本文中,提出了一种自适应分数阶微分滤波器(AFDF),可以自适应地增强属于血管状结构的像素。最初,使用Hessian多尺度特征分析从整个图像中过滤出类似血管的结构。然后使用阈值化和形态运算对其进行精炼。根据改进的结果,形成分段分数微分函数,以便分别增强弱和强血管/背景。基于Grunwald-Letnikov(G-L)定义开发的分数差分掩码使用此分数函数来调整血管度度量的分数阶。最后,通过与该掩模卷积对图像执行滤波操作。发现该算法有效地增强了视网膜眼底图像和脑血管的血管造影中的血管样结构,同时保留了纹理和背景结构。

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