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Automatic Target Recognition and Tracking in Forward-Looking Infrared Image Sequences with a Complex Background

机译:具有复杂背景的前瞻性红外图像序列中的目标自动识别和跟踪

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摘要

This paper presents a technique for automatic airborne target recognition and tracking in forward-looking infrared (FLIR) images with a complex background. An image splitting and merging method is applied for detecting target signals. The presence of a complex background due to clouds and sun glint generates clutter in the image with the resulting possibility of false alarms. A Bayesian classifier trained using the NMI (normalized moment of inertia) feature is proposed for efficient clutter rejection. After classification, target candidates are entered into a tracking filter. As an efficient and robust multi-target tracking filter in cluttered environments, the JDC-JIHPDAF is proposed. Experimental results using a wide range of real FLIR images ensure reliable classification and automatic target recognition performance.
机译:本文提出了一种具有复杂背景的前视红外(FLIR)图像中自动机载目标识别和跟踪的技术。图像分割和合并方法被应用于检测目标信号。由于云层和太阳闪烁而导致的复杂背景的存在会在图像中产生混乱,并可能导致误报。为有效地抑制杂波,提出了使用NMI(归一化惯性矩)特征训练的贝叶斯分类器。分类后,将目标候选者输入到跟踪过滤器中。 JDC-JIHPDAF作为杂乱环境中的一种高效,鲁棒的多目标跟踪滤波器,被提出。使用各种真实FLIR图像的实验结果可确保可靠的分类和自动目标识别性能。

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