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Natural scene segmentation based on a stochastic texture region merging approach

机译:基于随机纹理区域合并方法的自然场景分割

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This paper presents an approach for segmenting natural scenes based on the underlying texture characteristics using a stochastic region merging strategy. Texture region models are constructed from patch-based stochastic texture features using a texton dictionary learning approach. Finally, a stochastic region merging strategy performs the image segmentation based on texture region likelihood. Compared with other state-of-the-art texture segmentation methods, our experimental results suggest that our approach potentially can handle better highly textured regions commonly found in natural scenes, and also can be more robust to color and illumination variations.
机译:本文提出了一种使用随机区域合并策略根据基础纹理特征对自然场景进行分割的方法。使用texton字典学习方法从基于补丁的随机纹理特征构造纹理区域模型。最后,随机区域合并策略根据纹理区域的似然度执行图像分割。与其他最新的纹理分割方法相比,我们的实验结果表明,我们的方法潜在地可以处理自然场景中常见的更好的高度纹理化区域,并且对颜色和照明变化也更健壮。

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