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Content-Based Image Retrieval Using Color Volume Histograms

机译:使用颜色体积直方图检索基于内容的图像

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摘要

Human visual perception has a close relationship with the HSV color space, which can be represented as a cylinder. The question of how visual features are extracted using such an attribute is important. In this paper, a new feature descriptor; namely, a color volume histogram, is proposed for image representation and content-based image retrieval. It converts a color image from RGB color space to HSV color space and then uniformly quantizes it into 72 bins of color cues and 32 bins of edge cues. Finally, color volumes are used to represent the image content. The proposed algorithm is extensively tested on two Corel datasets containing 15 000 natural images. These image retrieval experiments show that the color volume histogram has the power to describe color, texture, shape and spatial features and performs significantly better than the local binary pattern histogram and multi-texton histogram approaches.
机译:人的视觉感知与HSV颜色空间(可以表示为圆柱)密切相关。使用这样的属性如何提取视觉特征的问题很重要。在本文中,一个新的特征描述符;提出了一种颜色体积直方图,用于图像表示和基于内容的图像检索。它将彩色图像从RGB颜色空间转换为HSV颜色空间,然后将其均匀地量化为72个颜色提示和32个边缘提示。最后,颜色量用于表示图像内容。该算法在包含1.5万张自然图像的两个Corel数据集上进行了广泛的测试。这些图像检索实验表明,颜色体积直方图具有描述颜色,纹理,形状和空间特征的能力,并且其性能明显优于局部二值模式直方图和多文本直方图方法。

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