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Bottom-Up Saliency Detection Model Based on Human Visual Sensitivity and Amplitude Spectrum

机译:基于人的视觉灵敏度和幅度谱的自下而上的显着性检测模型

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摘要

With the wide applications of saliency information in visual signal processing, many saliency detection methods have been proposed. However, some key characteristics of the human visual system (HVS) are still neglected in building these saliency detection models. In this paper, we propose a new saliency detection model based on the human visual sensitivity and the amplitude spectrum of quaternion Fourier transform (QFT). We use the amplitude spectrum of QFT to represent the color, intensity, and orientation distributions for image patches. The saliency value for each image patch is calculated by not only the differences between the QFT amplitude spectrum of this patch and other patches in the whole image, but also the visual impacts for these differences determined by the human visual sensitivity. The experiment results show that the proposed saliency detection model outperforms the state-of-the-art detection models. In addition, we apply our proposed model in the application of image retargeting and achieve better performance over the conventional algorithms.
机译:随着显着性信息在视觉信号处理中的广泛应用,提出了许多显着性检测方法。但是,在建立这些显着性检测模型时,人类视觉系统(HVS)的一些关键特征仍然被忽略。在本文中,我们提出了一种基于人类视觉灵敏度和四元数傅里叶变换(QFT)幅度谱的新的显着性检测模型。我们使用QFT的幅度谱来表示图像斑块的颜色,强度和方向分布。每个图像斑块的显着性值不仅通过此斑块的QFT振幅谱与整个图像中其他斑块之间的差异来计算,还可以通过人类视觉敏感性确定的这些差异的视觉影响来计算。实验结果表明,所提出的显着性检测模型优于最新的检测模型。另外,我们将提出的模型应用于图像重定目标的应用中,并且比常规算法具有更好的性能。

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