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A concept-based model for image retrieval systems

机译:基于概念的图像检索系统模型

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摘要

Content-based image retrieval systems are designed to retrieve images based on the high-level desires and needs of users. However, due to the use of low-level features, image retrieval systems are faced with the so-called semantic gap problem in describing high-level concepts. In order to address this critical problem, a new concept-based model is proposed in this paper. The proposed model retrieves images based on two conceptual layers. In the first layer, the object layer, the objects are detected using the discriminative part-based approach. The second layer, on the other hand, is designed to recognize visual composite, a higher level concept to specify the related co-occurring objects. In the proposed model, this concept is recognized by a new template structure including the appearance filters, constraints, and a set of parameters trained by latent SVM. Experiments are carried out on the well-known Pascal VOC dataset. Results show that the proposed model significantly outperforms the existing content-based approaches. (C) 2015 Elsevier Ltd. All rights reserved.
机译:基于内容的图像检索系统旨在根据用户的高级需求来检索图像。然而,由于使用低级特征,图像检索系统在描述高级概念时面临所谓的语义间隙问题。为了解决这个关键问题,本文提出了一种新的基于概念的模型。所提出的模型基于两个概念层检索图像。在第一层(对象层)中,使用基于部分的判别方法检测对象。另一方面,第二层旨在识别视觉合成,这是一个高级概念,用于指定相关的同时出现的对象。在提出的模型中,此概念被新的模板结构识别,包括外观过滤器,约束和由潜在SVM训练的一组参数。实验在著名的Pascal VOC数据集上进行。结果表明,所提出的模型明显优于现有的基于内容的方法。 (C)2015 Elsevier Ltd.保留所有权利。

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