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An Orientation-Adaptive Extension to Scale-Adaptive Local Binary Patterns

机译:方向自适应扩展到比例自适应局部二元模式

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Methods based on Local Binary Patterns have been used successfully in a wide range of texture classification tasks. A restriction shared by all methods based on Local Binary Patterns is the high sensitivity to signal scale. In recent work we presented a general framework for scale-adaptive computation of Local Binary Patterns, improving the accuracy in texture classification scenarios involving varying texture-scales highly. In this work, the scale-adaptive methodology is extended by an orientation-adaptive computation of patterns, leading to a scale- and rotation invariant classification. The results suggest that estimating a global orientation to build orientation-adaptive LBPs is superior to the previously introduced rotation-invariant encodings. The proposed framework allows the use of the highly-discriminative LBPs in less-constrained situations, where both orientation, as well as scale variations, are to be expected.
机译:基于局部二值模式的方法已成功用于各种纹理分类任务中。所有基于本地二进制模式的方法所共有的一个限制是对信号规模的高敏感性。在最近的工作中,我们提出了用于局部二进制模式的尺度自适应计算的通用框架,从而极大地提高了涉及变化的尺度的纹理分类方案的准确性。在这项工作中,通过模式的方向自适应计算扩展了比例尺自适应方法,从而导致了比例尺和旋转不变性分类。结果表明,估计总体方向以构建方向适应性LBP优于先前引入的旋转不变编码。拟议的框架允许在要求较少的情况下使用高度区分性的LBP,在这种情况下,方向和尺度的变化都是可以预期的。

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