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A rapid 2-D centerline extraction method based on tensor voting

机译:基于张量投票的二维中心线快速提取方法

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Centerline extraction is widely used in medical image processing. It can benefit applications such as building the connectivity map of neurons from microscopic images as well as examining retina vessels for preventing blindness. Many methods have been developed to extract centerlines from 2-D images. An algorithm based on 2-D rapid tensor voting is proposed in this paper. This method uses the Canny edge detector and a simple ridge finding algorithm to roughly extract centerlines, which is fast, does not require any seeds and allows the object to be disconnected. Then efficient 2-D tensor voting is applied to enhance the centerline, which can rapidly bridge the gaps caused by the earlier step and reject artifacts due to noise. We demonstrate the robustness of the algorithm and compare with existing methods. The result shows good computational efficiency as well as accuracy.
机译:中心线提取广泛用于医学图像处理。它可以使应用受益,例如从显微图像建立神经元的连接图以及检查视网膜血管以防止失明。已经开发出许多方法来从二维图像中提取中心线。提出了一种基于二维快速张量投票的算法。该方法使用Canny边缘检测器和简单的脊线查找算法来粗略提取中心线,该方法速度快,不需要任何种子并且可以使对象断开连接。然后,使用有效的二维张量投票来增强中心线,该中心线可以快速弥合由较早步骤引起的间隙,并消除由于噪声引起的伪像。我们证明了该算法的鲁棒性,并与现有方法进行了比较。结果显示了良好的计算效率和准确性。

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