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Infrared Dim and Small Target Detection Based on the Human Visual Attention Mechanism

机译:基于人类视觉注意机制的红外弱小目标检测

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This article proposes an algorithm based on the human visual attention mechanism to solve the infrared target detection problem provided that the targets are submerged in the background. Firstly, the regions of interest (ROIs) of the image are obtained by the top-hat transform of mathematical morphology and the method of adaptive thresholding segmentation. Secondly, the image's signal-to-noise ratio (SNR) is enhanced by processing the ROIs using the difference of Gaussians (Dog) filter which has the characteristic of human vision in the scale space. Then, the points which have the local maximum SNR in the detected image can be regarded as the candidate targets. At last, considering the targets are easily submerged in the background and to prevent the targets not being detected, the algorithm proposes searching the missing targets again using the Retinex theory. Experimental results with real forward-looking infrared (FLIR) images show higher detection rate and lower false alarm rate than other methods, especially for the targets submerged in the background.
机译:本文提出了一种基于人类视觉注意力机制的算法,以解决目标被淹没在背景中的红外目标检测问题。首先,通过数学形态学的顶帽变换和自适应阈值分割方法获得图像的感兴趣区域(ROI)。其次,通过使用具有高斯人视觉特征的高斯(Dog)滤波器的差值来处理ROI,从而增强图像的信噪比(SNR)。然后,在检测到的图像中具有局部最大SNR的点可以被视为候选目标。最后,考虑到目标很容易被淹没在后台并且为了防止目标未被检测到,该算法建议使用Retinex理论再次搜索丢失的目标。真实前视红外(FLIR)图像的实验结果显示出比其他方法更高的检测率和更低的误报率,尤其是对于淹没在背景中的目标而言。

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