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Content-Based Image Retrieval Using Invariant Color and Texture Features

机译:基于内容的图像检索使用不变颜色和纹理功能

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Since the last decade, Content-Based Image Retrieval was a hot topic research. The computational complexity and the retrieval accuracy are the main problems that CBIR systems have to avoid. To avoid these problems, this paper proposes a new content-based image retrieval method that uses both color and texture feature. To extract the color feature from the image, the color moment will be calculated where the image will be in the HSV color space. To extract the texture feature, the image will be in gray-scale and Ranklet Transform is performed on it. From the ranklet images generated from the original image, the texture feature is extracted by calculating the texture moments. Experiments results show that using both color and texture feature to describe the image and use them for image retrieval is more accurate than using one of them only.
机译:自上年以来,基于内容的图像检索是一个热门的研究。 计算复杂性和检索准确性是CBIR系统必须避免的主要问题。 为避免这些问题,本文提出了一种新的基于内容的图像检索方法,它使用颜色和纹理功能。 要从图像中提取颜色特征,将计算颜色时刻,其中图像将在HSV颜色空间中。 要提取纹理功能,图像将处于灰度范围,并对其执行Ranklet变换。 根据从原始图像生成的Ranklet图像,通过计算纹理矩来提取纹理功能。 实验结果表明,使用颜色和纹理特征来描述图像并使用它们进行图像检索比使用其中一个更准确。

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