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Automatic Sulcal Curve Extraction on the Human Cortical Surface

机译:人皮质表面上的自动硫曲线提取

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The recognition of sulcal regions on the cortical surface is an important task to shape analysis and landmark detection. However, it is challenging especially in a complex, rough human cortex. In this paper, we focus on the extraction of sulcal curves from the human cortical surface. The previous sulcal extraction methods are time-consuming in practice and often have a difficulty to delineate curves correctly along the sulcal regions in the presence of significant noise. Our pipeline is summarized in two main steps: 1) We extract candidate sulcal points spread over the sulcal regions. We further reduce the size of the candidate points by applying a line simplification method. 2) Since the candidate points are potentially located away from the exact valley regions, we propose a novel approach to connect candidate sulcal points so as to obtain a set of complete curves (line segments). We have shown in experiment that our method achieves high computational efficiency, improved robustness to noise, and high reliability in a test-retest situation as compared to a well-known existing method.
机译:对皮质表面上的硫的识别是形状分析和地标检测的重要任务。然而,挑战尤其是在复杂的粗糙的人皮层中。在本文中,我们专注于从人皮质表面提取硫的曲线。先前的硫化方法在实践中是耗时的,并且通常在显着噪音存在下沿着硫的区域正确地描绘曲线。我们的管道总结了两个主要步骤:1)我们提取候选硫代散,延伸在硫的区域。通过应用线简化方法,我们进一步降低了候选点的大小。 2)由于候选点可能位于远离精确的谷地区,因此我们提出了一种新的方法来连接候选硫的点,以便获得一组完整的曲线(线段)。我们在实验中显示了我们的方法实现了高计算效率,对噪声的鲁棒性提高,并且与众所周知的现有方法相比,在测试 - 重新测试中的可靠性高。

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