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Rotation invariant texture classification using LBP variance (LBPV) with global matching

机译:使用LBP方差(LBPV)和全局匹配的旋转不变纹理分类

摘要

Local or global rotation invariant feature extraction has been widely used in texture classification. Local invariant features, e.g. local binary pattern (LBP), have the drawback of losing global spatial information, while global features preserve little local texture information. This paper proposes an alternative hybrid scheme, globally rotation invariant matching with locally variant LBP texture features. Using LBP distribution, we first estimate the principal orientations of the texture image and then use them to align LBP histograms. The aligned histograms are then in turn used to measure the dissimilarity between images. A new texture descriptor, LBP variance (LBPV), is proposed to characterize the local contrast information into the one-dimensional LBP histogram. LBPV does not need any quantization and it is totally training-free. To further speed up the proposed matching scheme, we propose a method to reduce feature dimensions using distance measurement. The experimental results on representative databases show that the proposed LBPV operator and global matching scheme can achieve significant improvement, sometimes more than 10% in terms of classification accuracy, over traditional locally rotation invariant LBP method.
机译:局部或全局旋转不变特征提取已广泛用于纹理分类。局部不变特征,例如局部二进制模式(LBP)具有丢失全局空间信息的缺点,而全局特征保留的局部纹理信息很少。本文提出了一种替代混合方案,全局旋转不变匹配与局部变体LBP纹理特征。使用LBP分布,我们首先估计纹理图像的主要方向,然后使用它们来对齐LBP直方图。然后将对齐的直方图依次用于测量图像之间的差异。提出了一种新的纹理描述符LBP方差(LBPV),以将局部对比度信息表征为一维LBP直方图。 LBPV不需要任何量化,并且完全不需要训练。为了进一步加快提出的匹配方案,我们提出了一种使用距离测量来减少特征尺寸的方法。在代表性数据库上的实验结果表明,与传统的局部旋转不变LBP方法相比,所提出的LBPV算子和全局匹配方案可以实现明显的改进,有时在分类精度方面超过10%。

著录项

  • 作者

    Guo Z; Zhang L; Zhang D;

  • 作者单位
  • 年度 2010
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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