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Selective extraction of entangled textures via adaptive PDE transform

机译:通过自适应PDE变换选择性地提取纠缠纹理

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摘要

Texture and feature extraction is an important research area with a wide range of applications in science and technology. Selective extraction of entangled textures is a challenging task due to spatial entanglement, orientation mixing, and high-frequency overlapping. The partial differential equation (PDE) transform is an efficient method for functional mode decomposition. The present work introduces adaptive PDE transform algorithm to appropriately threshold the statistical variance of the local variation of functional modes. The proposed adaptive PDE transform is applied to the selective extraction of entangled textures. Successful separations of human face, clothes, background, natural landscape, text, forest, camouflaged sniper and neuron skeletons have validated the proposed method.
机译:纹理和特征提取是一个重要的研究领域,在科学技术中具有广泛的应用。由于空间纠缠,方向混合和高频重叠,对纠缠纹理的选择性提取是一项艰巨的任务。偏微分方程(PDE)变换是一种功能模式分解的有效方法。本工作介绍了自适应PDE变换算法,以适当地阈值功能模式的局部变化的统计方差。提出的自适应PDE变换应用于纠缠纹理的选择性提取。人脸,衣服,背景,自然景观,文本,森林,伪装的狙击手和神经元骨骼的成功分离已验证了该方法。

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