An improved segmentation of high spatial resolution remote sensing image using Marker-based Watershed Algorithm

Boren Li, M. Pan, Zixing Wu
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引用次数: 28

Abstract

This study presents a novel approach to reduce over-segmentation using both pre- and post-processing for watershed segmentation. We make use of more prior knowledge in pre-processing and merge the redundant minimal regions in post-processing. In the initial stage of the watershed transform, this not only produces a gradient image from the original image, but also introduces the texture gradient. The texture gradient can be extracted using a gray-level co-occurrence matrix. Then, both gradient images are fused to give the final gradient image. After the initial results of segmentation, we use the merging region technique to remove small regions. Experiments show the effectiveness of segmentation.
基于标记的分水岭算法在高空间分辨率遥感图像分割中的改进
本研究提出了一种利用分水岭分割的预处理和后处理来减少过度分割的新方法。我们在预处理中利用更多的先验知识,在后处理中合并冗余的最小区域。在分水岭变换的初始阶段,不仅从原始图像产生梯度图像,而且引入了纹理梯度。纹理梯度可以使用灰度共生矩阵来提取。然后,将两个梯度图像进行融合,得到最终的梯度图像。在初始分割结果之后,我们使用合并区域技术去除小区域。实验证明了分割的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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