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Multi-scale target detection in SAR image based on visual attention model

机译:基于视觉注意模型的SAR图像多尺度目标检测

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摘要

This paper proposes a novel method for synthetic aperture radar (SAR) target detection by using multi-scale SAR images based on visual attention model, which can automatically find the vehicle targets from the complicated background with clutters such as trees and buildings. In our method, firstly, a saliency map is obtained from a Gaussian pyramid of the original SAR image, where the image scales are selected based on the prior size information of the targets to be detected in the image. Secondly, we use the method based on shifts of the focus of attention (FOA) in the saliency map to get a binary image. Finally, the clustering algorithm based on the prior length of targets is employed to extract the target candidate chips in the binary image. In the experiment based on the real SAR image, we compare the proposed method with the classical constant false alarm rate (CFAR) target detection method, which indicates that our method can detect vehicle targets in the image more quickly and with fewer false alarms.
机译:提出了一种基于视觉注意力模型的多尺度SAR图像合成孔径雷达目标检测的新方法,该方法可以从树木和建筑物等杂乱的复杂背景中自动找到车辆目标。在我们的方法中,首先,从原始SAR图像的高斯金字塔中获取显着图,其中基于要在图像中检测的目标的先验尺寸信息来选择图像比例。其次,我们使用基于显着性图上关注焦点(FOA)偏移的方法来获得二值图像。最后,采用基于目标先验长度的聚类算法提取二值图像中的目标候选码片。在基于真实SAR图像的实验中,我们将本文提出的方法与经典的恒定误报率(CFAR)目标检测方法进行了比较,这表明我们的方法可以更快,更少地检测出图像中的车辆目标。

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