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Attention-driven image interpretation with application to image retrieval

机译:用应用于图像检索的注意力驱动图像解释

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Visual attention, a selective procedure of human's early vision, plays a very important role for humans to understand a scene by intuitively emphasizing some focused regions/objects. Being aware of this, we propose an attention-driven image interpretation method that pops out visual attentive objects from an image iteratively by maximizing a global attention function. In this method, an image can be interpreted as containing several perceptually attended objects as well as a background, where each object has an attention value. The attention values of attentive objectives are then mapped to importance factors so as to facilitate the subsequent image retrieval. An attention-driven matching algorithm is proposed in this paper based on a retrieval strategy emphasizing attended objects. Experiments on 7376 Hemera color images annotated by keywords show that the retrieval results from our attention-driven approach compare favorably with conventional methods, especially when the important objects are seriously concealed by the irrelevant background. (c) 2006 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:视觉关注,一种人类早期视觉的选择性程序,对人类来说对人类来说,通过直观地强调一些被聚焦的地区/物体来了解场景。涉及这一点,我们提出了一种注意力驱动的图像解释方法,通过最大化全局注意功能来迭代地从图像中弹出视觉周到物体。在该方法中,可以将图像解释为包含几个感知的物体以及背景,其中每个对象具有注意值。然后将注意力目标的注意值映射到重要因素,以便于随后的图像检索。本文在本文中提出了一种注意力匹配算法,该综合算法基于反对检索策略的检索策略。通过关键词注释的7376 Hemera彩色图像的实验表明,通过传统方法,我们的注意力驱动方法的检索结果比较,特别是当由于无关背景严重隐藏而是当重要的物体被严重隐藏时。 (c)2006年模式识别协会。 elsevier有限公司出版。保留所有权利。

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