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An Efficient Infrared Small Target Detection Method Based on Visual Contrast Mechanism

机译:基于视觉对比机制的高效红外小目标检测方法

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摘要

Robust and efficient detection of an infrared (IR) small target is very important in the IR search and track system. Based on the contrast mechanism of the human visual system, an IR small target detection method with high detection rate, low false alarm rate, and short processing time is proposed in this letter. This method consists of two stages. At the first stage, with the top-hat filter and an adaptive threshold operation based on the constant false alarm rate applied to the original image, the suspicious target regions are obtained. In this way, the computing time of the following steps would be reduced a lot; meanwhile, the desired and predictable detection probability with the constant false alarm probability is maintained. At the second stage, we first define a new efficient local contrast measure between the target and the background, and the local self-similarity of an image is introduced to calculate the local saliency map. With the combination of the local self-similarity and local contrast, an efficient saliency map is obtained, which cannot only increase the signal-to-clutter ratio but also suppress residual clutter simultaneously. Then, a simple threshold operation on the saliency map is used to get the true targets. Experimental results indicate that the proposed method is superior in detection rate, false alarm rate, and processing time compared with the contrast algorithms, and it is an efficient method for IR small target detection in a complex background.
机译:在红外搜索和跟踪系统中,鲁棒和有效地检测红外小目标非常重要。基于人类视觉系统的对比度机制,提出了一种红外小目标检测方法,该方法检测率高,误报率低,处理时间短。该方法包括两个阶段。在第一阶段,利用高帽滤波器和基于应用于原始图像的恒定误报率的自适应阈值运算,获得可疑目标区域。这样,可以大大减少以下步骤的计算时间;同时,在误报概率恒定的情况下,可以保持期望的和可预测的检测概率。在第二阶段,我们首先在目标和背景之间定义一种新的有效局部对比度度量,然后引入图像的局部自相似度以计算局部显着图。结合局部自相似度和局部对比度,可获得有效的显着图,其不仅可以提高信杂比,而且可以同时抑制残留杂波。然后,对显着性图进行简单的阈值运算即可获得真实目标。实验结果表明,与对比算法相比,该方法在检测率,误报率和处理时间上具有优越性,是一种在复杂背景下进行红外小目标检测的有效方法。

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