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A Novel Local Human Visual Perceptual Texture Description with Key Feature Selection for Texture Classification

机译:具有关键特征选择的新型局部人类视觉感知纹理描述用于纹理分类

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This paper proposes a novel local texture description method which defines six human visual perceptual characteristics and selects the minimal subset of relevant as well as nonredundant features based on principal component analysis (PCA). We assign six texture characteristics, which were originally defined by Tamura et al., with novel definition and local metrics so that these measurements reflect the human perception of each characteristic more precisely. Then, we propose a PCA-based feature selection method exploiting the structure of the principal components of the feature set to find a subset of the original feature vector, where the features reflect the most representative characteristics for the textures in the given image dataset. Experiments on different publicly available large datasets demonstrate that the proposed method provides superior performance of classification over most of the state-of-the-art feature description methods with respect to accuracy and efficiency.
机译:本文提出了一种新颖的局部纹理描述方法,该方法定义了六个人类视觉感知特征,并基于主成分分析(PCA)选择相关特征和非冗余特征的最小子集。我们分配了六个纹理特征,这些特征最初是由田村等人定义的,具有新颖的定义和局部量度,因此这些测量值可以更精确地反映人类对每个特征的感知。然后,我们提出一种基于PCA的特征选择方法,该方法利用特征集主要成分的结构来查找原始特征向量的子集,其中特征反映给定图像数据集中纹理的最具代表性的特征。在不同的公开可用大型数据集上进行的实验表明,相对于大多数最新的特征描述方法,该方法在准确性和效率上均提供了优越的分类性能。

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