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Efficient object identification and multiple regions of interest using CBIR based on relative locations and matching regions

机译:基于相对位置和匹配区域,使用CBIR进行有效的对象识别和多个关注区域

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Nowadays information retrieval systems get more attention due to the increasing use of multimedia technologies. The information may be in the form of video, image, sound and/or text. Application of surveillance, digital libraries, web applications and various other applications that handle enormous volume of data essentially have information retrieval components. This paper demonstrates an image retrieval system based on multiple regions that give a client interface for helping to identify the watershed regions-of-interest inside of an input image. The relationship between semantic ideas and visual elements is established by supervised Bayesian learning from positive bags. For comparison, feature vectors of regions which have similar regions code to the regions of query image can be used during retrieval. On standard datasets the proposed algorithm has been applied and accomplishes great annotation performance.
机译:如今,由于多媒体技术的日益普及,信息检索系统受到了越来越多的关注。该信息可以是视频,图像,声音和/或文本的形式。监视应用程序,数字图书馆,Web应用程序和处理大量数据的各种其他应用程序实质上具有信息检索组件。本文演示了一种基于多个区域的图像检索系统,该系统提供了一个用于帮助识别输入图像内部的分水岭感兴趣区域的客户端界面。语义思想和视觉元素之间的关系是通过监督贝叶斯从正面袋中学习而建立的。为了比较,可以在检索期间使用具有与查询图像的区域相似的区域代码的区域的特征向量。在标准数据集上,所提出的算法已得到应用,并实现了出色的注释性能。

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