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An Approach for Image Retrieval Based on Visual Saliency

机译:一种基于视觉显着性的图像检索方法

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Considering the gap between low-level image features and the high-level semantic concept in content-based image retrieval (CBIR), a new approach is proposed for image retrieval based on visual saliency, by analyzing the human visual perception process. Visual information is introduced as the new feature which reflects high-level semantic concept objectively. First, the visual saliency model for image retrieval is established. The saliency features of intensity, color and texture are calculated. Second, integrated global saliency map is synthesized and its statistic histogram is used as a new feature in image retrieval. Finally, the similarity of color images is computed by combining the color feature and the histogram of integrated saliency map. Results of experiments show that our approach improves retrieval precision and recall when compared with the classical color feature approach.
机译:考虑到基于内容的图像检索(CBIR)的低级图像特征和高电平语义概念之间的差距,提出了一种基于视力的图像检索,通过分析人类视觉感知过程来进行新方法。视觉信息被引入为幽默地反映高级语义概念的新功能。首先,建立了图像检索的视觉显着模型。计算强度,颜色和纹理的显着特征。其次,合成了集成的全局显着性图,其统计直方图用作图像检索中的新功能。最后,通过组合颜色特征和集成显着图的直方图来计算彩色图像的相似性。实验结果表明,与经典颜色特征方法相比,我们的方法提高了检索精度和召回。

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