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Manifold SLIC: A Fast Method to Compute Content-Sensitive Superpixels

机译:歧管SLIC:计算内容敏感超像素的快速方法

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Superpixels are perceptually meaningful atomic regions that can effectively capture image features. Among various methods for computing uniform superpixels, simple linear iterative clustering (SLIC) is popular due to its simplicity and high performance. In this paper, we extend SLIC to compute content-sensitive superpixels, i.e., small superpixels in content-dense regions (e.g., with high intensity or color variation) and large superpixels in content-sparse regions. Rather than the conventional SLIC method that clusters pixels in ℝ5, we map the image I to a 2-dimensional manifold M ⊂ ℝ5, whose area elements are a good measure of the content density in I. We propose an efficient method to compute restricted centroidal Voronoi tessellation (RCVT) - a uniform tessellation - on M, which induces the content-sensitive superpixels in I. Unlike other algorithms that characterize content-sensitivity by geodesic distances, manifold SLIC tackles the problem by measuring areas of Voronoi cells on M, which can be computed at a very low cost. As a result, it runs 10 times faster than the state-of-the-art content-sensitive superpixels algorithm. We evaluate manifold SLIC and seven representative methods on the BSDS500 benchmark and observe that our method outperforms the existing methods.
机译:超像素是感知上有意义的原子区域,可以有效地捕获图像特征。在各种计算均匀超像素的方法中,简单线性迭代聚类(SLIC)由于其简单性和高性能而广受欢迎。在本文中,我们将SLIC扩展为计算内容敏感的超像素,即内容密集区域(例如,具有高强度或颜色变化)的小超像素和内容稀疏区域的大超像素。我们将图像I映射到二维流形M⊂5,而不是将S5中的像素聚类的常规SLIC方法,该图像的面积元素可以很好地衡量I中的内容密度。我们提出了一种有效的方法来计算受限质心Voronoi镶嵌(RCVT)-M上的均匀镶嵌,在I中诱导出内容敏感的超像素。与其他通过测地距离表征内容敏感度的算法不同,流形SLIC通过测量M上Voronoi单元的面积来解决该问题,可以以非常低的成本进行计算。结果,它的运行速度比最新的内容敏感型超像素算法快10倍。我们在BSDS500基准测试中评估了多种SLIC和七个代表性方法,并观察到我们的方法优于现有方法。

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