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Joint linear-circular stochastic models for texture classification

机译:联合线性-圆形随机模型进行纹理分类

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In this paper, we investigate both linear and circular stochastic models in the context of texture discrimination. These models aim at representing the magnitudes and orientations obtained by a complex wavelet decomposition, such as the steerable pyramid.The novelty consists in considering specific parametric models for circular data such as von Mises and psi- distributions to describe the distributions of orientations. Particular attention is paid to the choice of a metric and to its adequation to the models. Indexing experiments are conducted to quantitatively evaluate the performances of the proposed models and of the chosen matrices, i.e. the L
机译:在本文中,我们在纹理识别的背景下研究了线性和圆形随机模型。这些模型旨在表示通过复杂小波分解(例如可控金字塔)获得的幅度和方向。新颖之处在于考虑使用圆形数据的特定参数模型(例如冯·米塞斯和psi分布)来描述方向的分布。特别要注意度量的选择及其对模型的适用性。进行索引实验以定量评估建议模型和所选矩阵(即L)的性能

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