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Scalable multiresolution color image segmentation with smoothness constraint

机译:具有平滑度约束的可扩展多分辨率彩色图像分割

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This paper presents a multiresolution image segmentation method based on the discrete wavelet transform and Markov random field (MRF) modeling. A major contribution of this work is to add spatial scalability to the segmentation algorithm producing the same segmentation pattern at different resolutions. This property makes it applicable for scalable object-based wavelet coding. The correlation between different resolutions of pyramid is considered by a multire solution analysis which is incorporated into the objective function of the MRF segmentation algorithm. Examining the corresponding pixels at different resolutions simultaneously enables the algorithm to directly segment the images in the YUV or similar color spaces where luminance is in full resolution and chrominance components are at half resolution. Allowing for smoothness terms in the objective function at different resolutions improves border smoothness and creates visually more pleasing objects/regions, particularly at lower resolutions where downsampling distortions are more visible. In addition to spatial scalability, the proposed algorithm outperforms the standard single and multire solution segmentation algorithms, in both objective and subjective tests.
机译:本文介绍了一种基于离散小波变换和马尔可夫随机场(MRF)建模的多分辨率图像分割方法。这项工作的主要贡献是为在不同分辨率下产生相同分割模式的分割算法增加空间可扩展性。此属性使其适用于基于对象的小波编码。多次解决方案分析考虑了金字塔的不同分辨率之间的相关性,该多重解决方案分析结合到MRF分割算法的目标函数中。检查不同分辨率的相应像素同时使算法能够直接在亮度处于完全分辨率的YUV或类似颜色空间中段分段,以及色度分量的半分辨率。允许在不同分辨率下的目标函数中允许平滑术语改善了边界平滑度并在视觉上产生了更令人愉悦的物体/区域,特别是在下采样失真更加可见的较低分辨率。除了空间可扩展性之外,所提出的算法在客观和主观测试中占据了标准单极和多重解决方案分段算法。

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