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Feature fusion and non-negative matrix factorization based active contours for texture segmentation

机译:基于特征融合和非负矩阵分解的主动轮廓进行纹理分割

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摘要

This paper presents a robust and convex active contour model for texture segmentation. Firstly, to achieve more comprehensive feature description, we compute a set of feature maps by combining local variation degree (LVD) of intensity and Gabor features. This feature fusion improves the separability between sub-regions and the robustness against complex textures. Upon these feature maps, we compute local histograms over fixed-size windows to describe the local structures formed by feature values. For each pixel, its feature vector is defined as the concatenation of all computed histograms. Secondly, to localize region boundaries more accurately, we formulate the proposed energy functional via Non-negative Matrix Factorization (NMF), which encourages each pixel to fall into the sub-region that has the largest coverage area in its neighborhood. Finally, the functional is explored further using convex optimization theory. Our segmentation results are therefore insensitive to different initial contours. The experiments performed on synthetic images, histology images and natural images demonstrate that our approach can obtain high-quality object boundaries in the presence of image noise and cluttered scenes. (C) 2019 Elsevier B.V. All rights reserved.
机译:本文提出了一种鲁棒的凸主动轮廓模型用于纹理分割。首先,为了获得更全面的特征描述,我们通过结合强度和Gabor特征的局部变化程度(LVD)来计算一组特征图。这种特征融合改善了子区域之间的可分离性,并提高了对复杂纹理的鲁棒性。在这些特征图上,我们在固定大小的窗口上计算局部直方图,以描述由特征值形成的局部结构。对于每个像素,其特征向量定义为所有计算的直方图的串联。其次,为了更精确地定位区域边界,我们通过非负矩阵分解(NMF)制定了拟议的能量函数,该函数可鼓励每个像素落入其邻域中具有最大覆盖区域的子区域。最后,使用凸优化理论进一步探索该函数。因此,我们的分割结果对不同的初始轮廓不敏感。对合成图像,组织学图像和自然图像进行的实验表明,在存在图像噪声和混乱场景的情况下,我们的方法可以获取高质量的对象边界。 (C)2019 Elsevier B.V.保留所有权利。

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