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基于通用和类别特定码本的低秩稀疏编码的细粒度图像分类。

Fine-Grained Image Classification via Low-Rank Sparse Coding With General and Class-Specific Codebooks.

出版信息

IEEE Trans Neural Netw Learn Syst. 2017 Jul;28(7):1550-1559. doi: 10.1109/TNNLS.2016.2545112. Epub 2016 Apr 7.

Abstract

This paper tries to separate fine-grained images by jointly learning the encoding parameters and codebooks through low-rank sparse coding (LRSC) with general and class-specific codebook generation. Instead of treating each local feature independently, we encode the local features within a spatial region jointly by LRSC. This ensures that the spatially nearby local features with similar visual characters are encoded by correlated parameters. In this way, we can make the encoded parameters more consistent for fine-grained image representation. Besides, we also learn a general codebook and a number of class-specific codebooks in combination with the encoding scheme. Since images of fine-grained classes are visually similar, the difference is relatively small between the general codebook and each class-specific codebook. We impose sparsity constraints to model this relationship. Moreover, the incoherences with different codebooks and class-specific codebooks are jointly considered. We evaluate the proposed method on several public image data sets. The experimental results show that by learning general and class-specific codebooks with the joint encoding of local features, we are able to model the differences among different fine-grained classes than many other fine-grained image classification methods.

摘要

本文试图通过低秩稀疏编码(LRSC)联合学习编码参数和码本,同时生成通用和特定类别码本来对细粒度图像进行分离。我们通过 LRSC 联合编码空间区域内的局部特征,而不是独立地对待每个局部特征。这确保了具有相似视觉特征的空间上接近的局部特征由相关参数进行编码。通过这种方式,我们可以使编码参数对于细粒度图像表示更加一致。此外,我们还结合编码方案学习通用码本和多个特定类别码本。由于细粒度类别的图像在视觉上相似,因此通用码本和每个特定类别码本之间的差异相对较小。我们施加稀疏约束来建模这种关系。此外,还联合考虑了不同码本和特定类别码本之间的不和谐。我们在几个公共图像数据集上评估了所提出的方法。实验结果表明,通过联合学习局部特征的通用和特定类别码本的编码,我们能够比许多其他细粒度图像分类方法更好地对不同细粒度类别的差异进行建模。

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