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A Visual Perceptual Descriptor with Depth Feature for Image Retrieval

机译:具有深度特征的视觉感知描述符用于图像检索

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This paper proposes a visual perceptual descriptor (VPD) and a new approach to extract perceptual depth feature for 2D image retrieval. VPD mimics human visual system, which can easily distinguish regions that have different textures, whereas for regions which have similar textures, color features are needed for further differentiation. We apply VPD on the gradient direction map of an image, capture texture-similar regions to generate a VPD map We then impose the VPD map on a quantized color map and extract color features only from the overlapped regions. To reflect the nature of perceptual distance in single 2D image, we propose and extract the perceptual depth feature by computing the nuclear norm of the sparse depth map of an image. Extracted color features and the perceptual depth feature are both incorporated to a feature vector, we utilize this vector to represent an image and measure similarity. We observe that the proposed VPD + depth method achieves a promising result, and extensive experiments prove that it outperforms other typical methods on 2D image retrieval.
机译:本文提出了一种视觉感知描述符(VPD)和一种提取感知深度特征以进行二维图像检索的新方法。 VPD模仿人类的视觉系统,可以轻松地区分具有不同纹理的区域,而对于具有相似纹理的区域,则需要颜色特征以进一步区分。我们将VPD应用于图像的梯度方向图,捕获纹理相似的区域以生成VPD图,然后将VPD图强加到量化的颜色图上,并仅从重叠区域中提取颜色特征。为了反映单个2D图像中感知距离的性质,我们提出并通过计算图像的稀疏深度图的核范数来提取感知深度特征。提取的颜色特征和感知深度特征都被合并到特征向量中,我们利用该向量表示图像并测量相似度。我们观察到,提出的VPD +深度方法取得了可喜的结果,大量的实验证明,它在2D图像检索上优于其他典型方法。

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