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首页> 外文期刊>IEEE Transactions on Image Processing >Adaptive Segmentation of Textured Images by Using the Coupled Markov Random Field Model
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Adaptive Segmentation of Textured Images by Using the Coupled Markov Random Field Model

机译:耦合马尔可夫随机场模型对纹理图像进行自适应分割

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摘要

Although simple and efficient, traditional feature-based texture segmentation methods usually suffer from the intrinsical less inaccuracy, which is mainly caused by the oversimplified assumption that each textured subimage used to estimate a feature is homogeneous. To solve this problem, an adaptive segmentation algorithm based on the coupled Markov random field (CMRF) model is proposed in this paper. The CMRF model has two mutually dependent components: one models the observed image to estimate features, and the other models the labeling to achieve segmentation. When calculating the feature of each pixel, the homogeneity of the subimage is ensured by using only the pixels currently labeled as the same pattern. With the acquired features, the labeling is obtained through solving a maximum a posteriori problem. In our adaptive approach, the feature set and the labeling are mutually dependent on each other, and therefore are alternately optimized by using a simulated annealing scheme. With the gradual improvement of features' accuracy, the labeling is able to locate the exact boundary of each texture pattern adaptively. The proposed algorithm is compared with a simple MRF model based method in segmentation of Brodatz texture mosaics and real scene images. The satisfying experimental results demonstrate that the proposed approach can differentiate textured images more accurately.
机译:尽管简单有效,传统的基于特征的纹理分割方法通常会遭受固有的不准确性,这主要是由于过于简单的假设所致,即每个用于估计特征的纹理子图像都是同质的。为了解决这个问题,本文提出了一种基于耦合马尔可夫随机场(CMRF)模型的自适应分割算法。 CMRF模型具有两个相互依赖的组件:一个模型对观察到的图像进行建模以估计特征,而另一个模型对标记进行建模以实现分割。在计算每个像素的特征时,仅使用当前标记为相同图案的像素可确保子图像的均匀性。利用所获取的特征,通过解决最大的后验问题来获得标记。在我们的自适应方法中,特征集和标记相互依赖,因此通过使用模拟退火方案来交替优化。随着特征精度的逐步提高,标签能够自适应地定位每个纹理图案的确切边界。将该算法与基于MRF模型的简单方法在Brodatz纹理镶嵌和真实场景图像分割中进行了比较。令人满意的实验结果表明,该方法可以更准确地区分纹理图像。

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