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Rotation and scale invariant local binary pattern based on high order directional derivatives for texture classification

机译:基于高阶方向导数的旋转和尺度不变局部二值模式用于纹理分类

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摘要

Local Binary Pattern (LBP) only encodes the first order directional derivatives of a center pixel but it does not consider higher order derivatives. This paper proposes a rotation and scale invariant local binary pattern by jointly taking into account high order directional derivatives, circular shift sub-uniform, and scale space. Each order directional derivatives are independently encoded in a similar way of the first order derivatives to generate a code for the center pixel. Different order derivatives produce different codes that result in several histograms over an image, and then all the histograms multiplied by weights are concatenated together to fully utilize information of different order derivatives. To further improve performance, circular shift sub-uniform and scale space techniques are used to obtain rotation and scale invariant local binary patterns. Extensive experiments show that the high order derivatives based LBP can achieve good performance and obviously outperforms existing methods.
机译:本地二进制模式(LBP)仅编码中心像素的一阶方向导数,但不考虑高阶导数。本文结合高阶方向导数,圆移子一致和尺度空间,提出了一种旋转和尺度不变的局部二值模式。以与一阶导数类似的方式独立地编码每个阶方向导数,以生成用于中心像素的代码。不同阶的导数产生不同的代码,从而在图像上产生多个直方图,然后将所有乘以权重的直方图连接在一起,以充分利用不同阶导数的信息。为了进一步提高性能,圆形移位子均匀和缩放空间技术用于获得旋转和缩放不变的局部二进制模式。大量实验表明,基于高阶导数的LBP可以实现良好的性能,并且明显优于现有方法。

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