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A New Saliency Detection Model in Remote Sensing Images with Sea Background

机译:在遥感的图象的一个新的显着性检测模型有海背景

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Human visual system is very efficient and selective in scene analysis, which has been widely used in image processing. This paper try to combines the characteristics of human visual system and propose a new bottom-up visual saliency model used for remote sensing saliency detection. This model is based on the premise that locally contrasted and globally rare features are salient. First, the low-level features of luminance and chrominance are directly extracted from the image. Second, a Gabor filter bank is applied on the three color channels to extract medium-level features as image orientation information. A comparison based on a 100 images (with typical ocean background) dataset. The experimental results demonstrate that the proposed method performs well in predicting human fixations and recognizing saliency area.
机译:人类视觉系统在场景分析中非常有效和选择,已广泛用于图像处理。本文试图结合人类视觉系统的特点,并提出了一种用于遥感显着性检测的新的自下而上的视觉显着性模型。该模型基于局部对比和全球罕见的特征突出的前提。首先,从图像中直接提取亮度和色度的低级特征。其次,将Gabor滤波器组应用于三种颜色通道,以提取中级特征作为图像方向信息。基于100图像(带典型的海洋背景)数据集进行比较。实验结果表明,该方法在预测人体固定和识别显着区域时表现良好。

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