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Optimum Gabor filter design and local binary patterns for texture segmentation

机译:最佳Gabor滤波器设计和局部二进制模式进行纹理分割

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摘要

We present a novel approach to multi-texture image segmentation based on the formation of an effective texture feature vector. Texture sub-features are derived from the output of an optimized Gabor filter. The filter's parameters are selected by an immune genetic algorithm, which aims at maximizing the discrimination between the multi-textured regions. Next the texture features are integrated with a local binary pattern, to form an effective texture descriptor with low computational cost, which overcomes the weakness of the single frequency output component of the filter. Finally, a K-nearest neighbor classifier is used to effect the multi-texture segmentation. The integration of the optimum Gabor filter and local binary pattern methods provide a novel solution to the task. Experimental results demonstrate the effectiveness of the proposed approach.
机译:我们提出了一种基于有效纹理特征向量形成的多纹理图像分割的新方法。纹理子特征来自优化的Gabor滤波器的输出。通过免疫遗传算法选择过滤器的参数,该算法旨在最大程度地区分多纹理区域。接下来,纹理特征与局部二进制模式集成,以形成具有低计算成本的有效纹理描述符,克服了滤波器的单频输出组件的缺点。最后,使用K最近邻分类器来实现多纹理分割。最佳Gabor滤波器和局部二进制模式方法的集成为任务提供了一种新颖的解决方案。实验结果证明了该方法的有效性。

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