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Generalized flooding and multicue PDE-based image segmentation

机译:广义洪泛和基于多个pDE的图像分割

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摘要

Image segmentation remains an important, but hard-to-solve, problem since it appears to be application dependent with usually no a priori information available regarding the image structure. Moreover, the increasing demands of image analysis tasks in terms of segmentation results' quality introduce the necessity of employing multiple cues for improving image segmentation results. In this paper, we attempt to incorporate cues such as intensity contrast, region size, and texture in the segmentation procedure and derive improved results compared to using individual cues separately. We emphasize on the overall segmentation procedure, and we propose efficient simplification operators and feature extraction schemes, capable of quantifying important characteristics, like geometrical complexity, rate of change in local contrast variations, and orientation, that eventually favor the final segmentation result. Based on the well-known morphological paradigm of watershed transform segmentation, which exploits intensity contrast and region size criteria, we investigate its partial differential equation (PDE) formulation, and we extend it in order to satisfy various flooding criteria, thus making it applicable to a wider range of images. Going a step further, we introduce a segmentation scheme that couples contrast criteria in flooding with texture information. The modeling of the proposed scheme is done via PDEs and the efficient incorporation of the available contrast and texture information, is done by selecting an appropriate cartoon-texture image decomposition scheme. The proposed coupled segmentation scheme is driven by two separate image components: artoon U (for contrast information) and texture component V. The performance of the proposed segmentation scheme is demonstrated through a complete set of experimental results and substantiated using quantitative and qualitative criteria. © 2008 IEEE.
机译:图像分割仍然是一个重要但难以解决的问题,因为它似乎依赖于应用程序,通常没有关于图像结构的先验信息。此外,就分割结果的质量而言,图像分析任务的需求不断增加,引入了采用多种线索来改善图像分割结果的必要性。在本文中,我们尝试将诸如强度对比,区域大小和纹理之类的提示纳入分割过程,并与单独使用单个提示相比得出更好的结果。我们强调整体分割程序,并提出有效的简化运算符和特征提取方案,能够量化重要的特征,例如几何复杂度,局部对比度变化的变化率和方向,这些最终会有利于最终的分割结果。基于流域变换分割的著名形态学范例,该范例利用强度对比和区域大小标准,研究了其偏微分方程(PDE)公式,并对其进行扩展以满足各种泛洪标准,从而使其适用于图像范围更广。更进一步,我们引入了一种分割方案,该方案将纹理信息泛洪中的对比度标准耦合在一起。拟议方案的建模是通过PDE完成的,而有效对比度和纹理信息的有效合并是通过选择合适的卡通纹理图像分解方案来完成的。所提出的耦合分割方案由两个独立的图像分量驱动:artoon U(用于对比信息)和纹理分量V。所提出的分割方案的性能通过一整套实验结果进行了证明,并使用定量和定性标准进行了证实。 ©2008 IEEE。

著录项

  • 作者

    Sofou, A; Maragos, P;

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  • 年度 2008
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  • 原文格式 PDF
  • 正文语种 English
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