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首页> 外文期刊>Egyptian Journal of Basic and Applied Sciences >An efficient similarity measure for content based image retrieval using memetic algorithm
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An efficient similarity measure for content based image retrieval using memetic algorithm

机译:基于模因算法的基于内容的图像检索的有效相似性度量

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Content based image retrieval (CBIR) systems work by retrieving images which are related to the query image (QI) from huge databases. The available CBIR systems extract limited feature sets which confine the retrieval efficacy. In this work, extensive robust and important features were extracted from the images database and then stored in the feature repository. This feature set is composed of color signature with the shape and color texture features. Where, features are extracted from the given QI in the similar fashion. Consequently, a novel similarity evaluation using a meta-heuristic algorithm called a memetic algorithm (genetic algorithm with great deluge) is achieved between the features of the QI and the features of the database images. Our proposed CBIR system is assessed by inquiring number of images (from the test dataset) and the efficiency of the system is evaluated by calculating precision-recall value for the results. The results were superior to other state-of-the-art CBIR systems in regard to precision.
机译:基于内容的图像检索(CBIR)系统通过从大型数据库中检索与查询图像(QI)相关的图像来工作。可用的CBIR系统提取有限的特征集,从而限制了检索效率。在这项工作中,从图像数据库中提取了广泛的健壮和重要特征,然后将其存储在特征存储库中。此功能集由具有形状和颜色纹理功能的颜色签名组成。其中,以相似的方式从给定的QI中提取特征。结果,在QI的特征与数据库图像的特征之间实现了使用称为模因算法(泛滥的遗传算法)的元启发式算法的新颖相似性评估。我们提出的CBIR系统是通过查询图像数量(来自测试数据集)来评估的,而系统的效率是通过计算结果的精确召回值来评估的。在精度方面,结果优于其他最新的CBIR系统。

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