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Line detection in images through regularized hough transform

机译:通过正则霍夫变换对图像进行线条检测

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The problem of determining the location and orientation of straight lines in images is of great importance in the fields of computer vision and image processing. Traditionally the Hough transform, (a special case of the Radon transform) has been widely used to solve this problem for binary images. In this paper, we pose the problem of detecting straight lines in gray-scale images as an inverse problem. Our formulation is based on use of the inverse Radon operator, which relates the parameters determining the location and orientation of the lines in the image to the noisy input image. The advantage of this formulation is that we can then approach the problem of line detection within a regularization framework and enhance the performance of the Hough-based line detector through the incorporation of prior information in the form of regularization. We discuss the type of regularizers that are useful for this problem and derive efficient computational schemes to solve the resulting optimization problems enabling their use in large applications. Finally, we show how our new approach can be alternatively viewed as one of finding an optimal representation of the noisy image in terms of elements chosen from a dictionary of lines. This interpretation relates the problem of Hough-based line finding to the body of work on adaptive signal representation.
机译:确定图像中直线的位置和方向的问题在计算机视觉和图像处理领域中非常重要。传统上,霍夫变换(拉顿变换的一种特殊情况)已被广泛用于解决二进制图像的此问题。在本文中,我们提出了在灰度图像中检测直线的问题,这是一个反问题。我们的公式是基于反Radon运算符的使用,该函数将确定图像中线条的位置和方向的参数与嘈杂的输入图像相关联。这种公式化的优点是我们可以在正则化框架内解决线检测问题,并通过以正则化形式合并先验信息来增强基于霍夫的线检测器的性能。我们讨论了可用于此问题的正则化器的类型,并推导了有效的计算方案来解决由此产生的优化问题,从而使其能够在大型应用程序中使用。最后,我们展示了如何将我们的新方法看作是一种根据从线字典中选择的元素找到噪点图像的最佳表示的方法。这种解释将基于霍夫的寻线问题与自适应信号表示的研究工作联系起来。

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