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Multiquadric Spline-Based Interactive Segmentation of Vascular Networks

机译:基于多二次样条的血管网络交互式分割

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摘要

Commonly used drawing tools for interactive image segmentation and labeling include active contours or boundaries, scribbles, rectangles and other shapes. Thin vessel shapes in images of vascular networks are difficult to segment using automatic or interactive methods. This paper introduces the novel use of a sparse set of user-defined seed points (supervised labels) for precisely, quickly and robustly segmenting complex biomedical images. A multiquadric spline-based binary classifier is proposed as a unique approach for interactive segmentation using as features color values and the location of seed points. Epifluorescence imagery of the dura mater microvasculature are difficult to segment for quantitative applications due to challenging tissue preparation, imaging conditions, and thin, faint structures. Experimental results based on twenty epifluorescence images is used to illustrate the benefits of using a set of seed points to obtain fast and accurate interactive segmentation compared to four interactive and automatic segmentation approaches.
机译:用于交互式图像分割和标记的常用绘图工具包括活动轮廓或边界,涂鸦,矩形和其他形状。血管网络图像中的细血管形状很难使用自动或交互方法进行分割。本文介绍了稀疏的用户定义的种子点集(监督标签)的新颖用法,以精确,快速且可靠地分割复杂的生物医学图像。提出了一种基于多二次样条的二进制分类器,将颜色值和种子点的位置作为特征进行交互式分割的独特方法。由于具有挑战性的组织准备,成像条件以及薄而微弱的结构,硬膜微脉管系统的落射荧光成像难以细分用于定量应用。基于二十个落射荧光图像的实验结果用于说明与四种交互式和自动分割方法相比,使用一组种子点获得快速准确的交互式分割的好处。

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