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A novel image retrieval method based on multi-trend structure descriptor

机译:基于多趋势结构描述符的图像检索新方法

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摘要

This paper proposes an image feature representation method, namely Multi-Trend Structure Descriptor (MTSD), which is built based on the local and multi-trend structures. The local structures can be regarded as the basic units for image analysis, and the multi-trend structures are introduced to explore the correlation among pixels in local structures according to the information change of pixels. The visual information such as color, edge orientation and intensity map are considered and quantized, and with the local structure as a bridge, we use multi-trend to detect color, edge orientation and intensity map respectively for feature extraction. MTSD can characterize not only the low-level features, such as color, shape and texture, but also the local spatial structure information. We evaluate the performance of the proposed algorithm on Corel and Caltech datasets, and experimental results demonstrate that, MTSD significantly outperforms texton co-occurrence matrix, multi-texton histogram, micro-structure descriptor and saliency structure histogram. (C) 2016 Elsevier Inc. All rights reserved.
机译:本文提出了一种基于局部和多趋势结构的图像特征表示方法,即多趋势结构描述符(MTSD)。可以将局部结构视为图像分析的基本单元,并引入多趋势结构以根据像素的信息变化来探索局部结构中像素之间的相关性。考虑并量化视觉信息,例如颜色,边缘方向和强度图,并以局部结构为桥梁,我们使用多趋势分别检测颜色,边缘方向和强度图以进行特征提取。 MTSD不仅可以表征颜色,形状和纹理等底层特征,还可以表征局部空间结构信息。我们评估了该算法在Corel和Caltech数据集上的性能,实验结果表明,MTSD明显优于texton共现矩阵,multi-texton直方图,微观结构描述符和显着性结构直方图。 (C)2016 Elsevier Inc.保留所有权利。

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