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A NOVEL CONTENT-BASED IMAGE RETRIEVAL APPROACH BASED ON ATTENTION-DRIVEN MODEL

机译:一种基于新的基于内容的图像检索方法,基于注意力驱动模型

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Visual attention plays a vital role for humans to understand a scene by intuitively emphasizing some focused objects, and recent work in the model of visual attention has demonstrated that a purely bottom-up approach to identify salient regions within an image can be successfully applied to diverse problems. Being aware of this, a novel approach of extracting objects of interest (OOIs) based on attention-driven in an image is proposed. In this approach, the modified Itti-Koch model (M-Itti-Koch) of visual attention is used to find salient peaks, and then if these peaks overlap with regions generated by EM (Expectation-Maximization) algorithm, we proceed to extract attentive object around that point. Only these objects are considered for the next step, feature extraction and match. This attention-driven model used for CBIR provides a promising performance, as compared with some "current peer systems in the literature.
机译:视觉注意力对人类来说,通过直观地强调一些聚焦的物体来说,对人类来说是一个重要的作用,而最近在视觉注意的模型中的工作表明,可以成功地应用于识别图像内的突出区域的纯粹自下而上的方法问题。据了解这一点,提出了一种基于图像中的注意力提取感兴趣对象(OOI)的新方法。在这种方法中,用于视觉注意的修改的ITTI-Koch模型(M-ITTI-Koch)用于寻找突出峰值,然后如果这些峰值与由EM(预期最大化)算法产生的区域重叠,我们继续提取注意力对象左右。只考虑下一步,特征提取和匹配只有这些对象。对于CBIR的这种注意力驱动的模型提供了有希望的性能,与文献中的一些“当前同行系统相比。

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