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首页> 外文期刊>Applied optics >Multiple linear feature detection based on multiple-structuring-element center-surround top-hat transform
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Multiple linear feature detection based on multiple-structuring-element center-surround top-hat transform

机译:基于多结构元素中心环绕高顶礼帽变换的多线性特征检测

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摘要

Linear feature detection is an important technique in different applications of image processing. To detect linear features in different types of images, a simple but effective algorithm based on a multiple-structuring-element center-surround top-hat transform is proposed. The center-surround top-hat transform is discussed and analyzed. Based on the properties of this transform for image feature detection, multiple structuring elements are constructed corresponding to the possible linear features at different directions. The whole algorithm is divided into four parts. First, the algorithm uses the center-surround top-hat transform to detect all the possible linear features at different directions through constructing multiple structuring elements. Second, the detected linear feature regions at each direction are processed by a closing operation to remove the possible holes or unconnected regions. Third, the processed results of the detected linear feature regions at all directions are combined to form all the possible detected linear feature regions. Fourth, the combined result is refined by using some simple operations to form the final result. Experimental results on different types of images from different applications verified the effective performance of the proposed algorithm. Moreover, the experimental results indicate that the proposed algorithm could be used in different applications.
机译:线性特征检测是图像处理不同应用中的一项重要技术。为了检测不同类型图像中的线性特征,提出了一种基于多元结构中心环绕顶帽变换的简单有效算法。对中心环绕的高顶礼帽变换进行了讨论和分析。基于此变换的图像特征检测特性,构造了对应于不同方向上可能的线性特征的多个结构元素。整个算法分为四个部分。首先,该算法使用中心环绕高顶礼帽变换,通过构造多个结构元素来检测不同方向上的所有可能的线性特征。其次,在每个方向上通过闭合操作处理检测到的线性特征区域,以去除可能的孔或未连接的区域。第三,将在所有方向上检测到的线性特征区域的处理结果组合以形成所有可能的检测到的线性特征区域。第四,通过使用一些简单的操作来形成最终结果,对合并结果进行优化。来自不同应用的不同类型图像的实验结果证明了该算法的有效性能。实验结果表明,该算法可用于不同的应用场合。

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