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Fusion of colour, shape and texture features for content based image retrieval

机译:颜色,形状和纹理特征的融合,用于基于内容的图像检索

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Image retrieval in general and content based image retrieval in particular are well-known research fields in information management. A large number of methods have been proposed and investigated in both areas but satisfactory general solution have still not been developed. An image contains several types of visual information which are difficult to extract and combine manually by humans. In this paper, we propose a content based image retrieval system based on three major types of visual information: colour, texture and shape, and their distances to the origin in a three dimensional space for the retrieval. We experimentally investigated several feature extraction methods and learning algorithms for content based image retrieval. The results show that 5-Nearest Neighbour yield the highest accuracy for the chosen feature extraction methods.
机译:通常,图像检索以及特别是基于内容的图像检索是信息管理中的众所周知的研究领域。在这两个领域已经提出并研究了大量方法,但是仍未开发出令人满意的通用解决方案。图像包含几种视觉信息,这些信息很难被人手动提取和组合。在本文中,我们提出了一种基于内容的图像检索系统,该系统基于视觉信息的三种主要类型:颜色,纹理和形状,以及它们在三维空间中到原点的距离以进行检索。我们实验研究了几种基于内容的图像检索特征提取方法和学习算法。结果表明,对于所选择的特征提取方法,“最近5个邻居”产生的精度最高。

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