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Texture Segmentation of Jacquard Fabric Image Based on Multiresolution Markov Random Field

机译:基于Multianlue Larkov随机字段的提花织物图像纹理分割

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In order to develop an automated segmentation system for jacquard fabric images, a new approach based on MRMRF algorithm with variable weighing parameter is proposed in this paper. Firstly the variable weighting parameter different to the one in traditional MRMRF is described, which can provide a more accurate vector. The next step is MAP estimation and the model for texture segmentation. During this iterative process the initial value is big enough to learn more accurate parameters of feature energy. With the iterative number going on, the value will decrease and stop decreasing when the iterative number comes to some degree. Lastly the experiment results show that the new approach works better than the traditional method with constant weighing parameter.
机译:为了开发用于提花织物图像的自动分割系统,本文提出了一种基于MRMRF算法的新方法,采用了具有可变称重参数的MRMRF算法。首先,描述了传统MRMRF中的变量加权参数,其可以提供更准确的向量。下一步是映射估计和纹理分割模型。在此迭代过程中,初始值足够大,以了解更准确的特征能量参数。随着迭代号码进行,当迭代号码到某种程度上时,该值将减少和停止减少。最后,实验结果表明,新方法比具有恒定称重参数的传统方法更好。

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