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An Efficient System for Color Image Retrieval Representing Semantic Information to Enhance Performance by Optimizing Feature Extraction

机译:一种有效的彩色图像检索系统,通过优化特征提取来表示语义信息以增强性能

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Image retrieval is a well discussed field in digital image processing. Images can be sort out from a big collection and database of images on the basis of text, color and shape of objects in images. In CBIR systems, using combined features get many most similar and relevant images. In a typical CBIR system, the ocular content of the images from the large collection is extracted and displayed by a storehouse like m-dimensional feature vectors framed out from images. This vector of the images in the collection of images in database is named as a database of features. Most sought out systems represent images with color feature most related to user and shape feature to relate image to exact object from collection and test dataset. In this paper we present introduction, research work on color scheme with HSV colour space and its combination with shape using coiflet wavelet methods. States of art design of overall system is delineated with results evaluated for mean average precision and mean average recall for overall system.
机译:图像检索是数字图像处理中一个讨论充分的领域。可以根据图像中对象的文本,颜色和形状从大量图像库和图像数据库中对图像进行分类。在CBIR系统中,使用组合功能可以获得许多最相似和相关的图像。在典型的CBIR系统中,来自大型馆藏的图像的视觉内容是由仓库提取并显示的,就像从图像中构图出的m维特征向量一样。数据库中图像集合中的图像矢量被称为要素数据库。最受追捧的系统表示颜色特征与用户最相关的图像,以及形状特征以将图像与来自收集和测试数据集的精确对象相关联。在本文中,我们介绍了有关使用HSV颜色空间的配色方案及其使用coiflet小波方法与形状结合的研究,工作。概述了整个系统的最新设计水平,并评估了整个系统的平均平均精度和平均召回率。

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