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Segmentation through DWT and adaptive morphological closing

机译:通过DWT和自适应形态学分割进行分割

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Object segmentation is an essential task in computer vision and object recognitions. In this paper, we present an image segmentation technique that extract edge information from wavelet coefficients and uses mathematical morphology to segment the image. We threshold the image to get its binary version and get a high-pass image by the inverse DWT of its high frequency subbands from the wavelet domain. This is followed by an adaptive morphological closing operation that dynamically adjusts the structuring element according to the local orientation of edges. The ensued holes are, subsequently, filled by a morphological fill operation. For comparison, we are relying on the well-established Canny's method and show that, for images with low-textured background, our method performs better.
机译:对象分割是计算机视觉和对象识别中的一项重要任务。在本文中,我们提出了一种图像分割技术,该技术从小波系数中提取边缘信息,并使用数学形态学对图像进行分割。我们对图像进行阈值处理以获取其二进制版本,并通过来自小波域的高频子带的逆DWT来获取高通图像。随后是自适应形态关闭操作,该操作根据边缘的局部方向动态调整结构元素。随后,通过形态填充操作来填充随后的孔。为了进行比较,我们依靠完善的Canny方法,结果表明,对于背景纹理较少的图像,我们的方法效果更好。

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