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Multistage graph-based segmentation of thoracoscopic images.

机译:基于多阶段图的胸腔镜图像分割。

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摘要

This paper presents a graph-based segmentation method using multiple criteria in successive stages to segment thoracoscopic images acquired during a diskectomy procedure commonly used for thoracoscopic anterior release and fusion for scoliosis treatment. Starting with image pre-processing, including Gaussian smoothing, brightness and contrast enhancement, and histogram thresholding, a standard graph-based method is applied to produce a coarse segmentation of thoracoscopic images. Next, regions are further merged in a multistage graph-based process based on features like grey-level similarity, region size and common edge length. Experimental results show that our approach achieves good spatial coherence, accurate edge location and appropriate segmentation of the regions of interest from a sequence of thoracoscopic images.
机译:本文提出了一种基于图的分割方法,该方法在连续阶段中使用多个标准来分割在通常用于胸腔镜前释放和融合治疗脊柱侧弯的椎间盘切除术过程中获取的胸腔镜图像。从包括高斯平滑,亮度和对比度增强以及直方图阈值处理在内的图像预处理开始,应用基于标准图的方法来产生胸腔镜图像的粗略分割。接下来,基于灰度相似度,区域大小和公共边缘长度等特征,在基于多级图的过程中进一步合并区域。实验结果表明,我们的方法从一系列胸腔镜图像中获得了良好的空间连贯性,准确的边缘位置以及感兴趣区域的适当分割。

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