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Saliency detection using a central stimuli sensitivity based model

机译:使用基于中央刺激敏感性的模型进行显着性检测

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In this paper, a novel method is proposed to predict attention in image scenes by using a central stimuli sensitivity based saliency model. The proposed method is based on the general “center-surround” visual attention mechanism and the spatial frequency response of the human visual system (HVS). Following three biologically inspired principles, the saliency value is computed by two “scatter matrices” which are used to measure the similarity and distinctness within and between two classes, i.e., the center and surrounding regions, respectively. In order to detect salient objects with different size, the saliency of a pixel is estimated via the saliency support region of the pixel, which is the most salient region centered at the pixel with respect to the surrounding region. The proposed method which is compliant with human perceptual characteristics enables the prediction of human fixations. Experimental results on three eye tracking datasets verify the effectiveness of the method and show that the proposed method outperforms the state-of-the-art methods on the visual saliency detection task.
机译:在本文中,提出了一种新的方法来利用基于中央刺激敏感性的显着模型来预测图像场景中的注意力。所提出的方法基于一般的“中心环”视觉注意机制和人类视觉系统(HVS)的空间频率响应。在三种生物学激发的原理之后,显着性值由两个“散射矩阵”计算,其用于分别测量两个类,即中心和周围区域之间的相似性和区分。为了检测具有不同大小的凸起对象,通过像素的显着支撑区域估计像素的显着性,这是在相对于周围区域以像素为中心的最突出区域。符合人类感知特征的所提出的方法使得能够预测人体固定。三个眼跟踪数据集的实验结果验证了该方法的有效性,并表明所提出的方法优于最先进的方法对视觉显着性检测任务。

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