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A Restricted, Adaptive Threshold Segmentation Approach for Processing High-Speed Image Sequences of the Glottis

机译:一种有限的自适应阈值分割方法,用于处理声门的高速图像序列

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In this paper, we propose a restricted, adaptive threshold approach for the segmentation of images of the glottis acquired from high speed video-endoscopy (HSV). The approach involves first, identifying a region of interest (ROI) that encloses the vocal-fold motion extent for each image frame as estimated by the different image sequences. This procedure is then followed by threshold segmentation restricted within the identified ROI for each image frame of the original image sequences, or referred to as sub-image sequences. The threshold value is adapted for each sub-image frame and determined by respective minimum gray-scale value that typically corresponds to a spatial location within the glottis. The proposed approach is practical and highly efficient for segmenting a vast amount of image frames since simple threshold method is adapted. Results obtained from the segmentation of representative clinical image sequences are presented to verify the proposed method.
机译:在本文中,我们针对从高速视频内窥镜检查(HSV)获取的声门图像提出了一种限制性的自适应阈值方法。该方法涉及首先确定感兴趣的区域(ROI),该区域围绕由不同图像序列估计的每个图像帧的声带运动范围。然后,在此过程之后,将阈值分割限制在原始图像序列(称为子图像序列)的每个图像帧的已识别ROI内。该阈值适合于每个子图像帧并且由通常对应于声门内的空间位置的各个最小灰度值确定。由于采用了简单的阈值方法,因此所提出的方法对于分割大量图像帧是实用且高效的。呈现了从代表性临床图像序列的分割中获得的结果,以验证所提出的方法。

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