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Image Segmentation Method Using Thresholds Automatically Determined from Picture Contents

机译:根据图片内容自动确定阈值的图像分割方法

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摘要

Image segmentation has become an indispensable task in many image and video applications. This work develops an image segmentation method based on the modified edge-following scheme where different thresholds are automatically determined according to areas with varied contents in a picture, thus yielding suitable segmentation results in different areas. First, the iterative threshold selection technique is modified to calculate the initial-point threshold of the whole image or a particular block. Second, the quad-tree decomposition that starts from the whole image employs gray-level gradient characteristics of the currently-processed block to decide further decomposition or not. After the quad-tree decomposition, the initial-point threshold in each decomposed block is adopted to determine initial points. Additionally, the contour threshold is determined based on the histogram of gradients in each decomposed block. Particularly, contour thresholds could eliminate inappropriate contours to increase the accuracy of the search and minimize the required searching time. Finally, the edge-following method is modified and then conducted based on initial points and contour thresholds to find contours precisely and rapidly. By using the Berkeley segmentation data set with realistic images, the proposed method is demonstrated to take the least computational time for achieving fairly good segmentation performance in various image types.
机译:图像分割已成为许多图像和视频应用程序中必不可少的任务。这项工作开发了一种基于改进的边缘跟随方案的图像分割方法,该方法根据图片中内容变化的区域自动确定不同的阈值,从而在不同区域产生合适的分割结果。首先,修改迭代阈值选择技术以计算整个图像或特定块的初始阈值。其次,从整个图像开始的四叉树分解利用当前处理的块的灰度梯度特性来决定是否进一步分解。在四叉树分解之后,采用每个分解块中的起始点阈值来确定起始点。另外,轮廓阈值是基于每个分解块中的梯度直方图确定的。特别是,轮廓阈值可以消除不适当的轮廓,以提高搜索的准确性并使所需的搜索时间最小化。最后,对边缘跟随方法进行修改,然后根据初始点和轮廓阈值进行,以精确,快速地找到轮廓。通过将伯克利分割数据集与真实图像一起使用,所提出的方法被证明花费最少的计算时间来在各种图像类型中实现相当好的分割性能。

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    Department of Electrical Engineering, National Chung Cheng University, Chia-Yi 62102, Taiwan Department of Electronic Engineering, Chienkuo Technology University, Changhua City 500, Taiwan;

    Department of Electrical Engineering, National Chung Cheng University, Chia-Yi 62102, Taiwan;

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