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Temporal Profile Based Small Moving Target Detection Algorithm in Infrared Image Sequences

机译:基于时间轮廓的红外图像序列小运动目标检测算法

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摘要

A new algorithm is presented which deals with the problem of detecting small moving targets in infrared image sequences that also contain drifting and evolving clutter. Through development of models of the temporal behavior of the static background, target and cloud edge on a single pixel basis, the new algorithm employing the connecting line of the stagnation points (CLSP) of the temporal profile as the baseline is created and tested. The deviation of the temporal profile and its CLSP is analyzed and it is determined that the distribution of the residual temporal profile obtained by subtracting the baseline from the temporal profile can be modeled by a Gaussian distribution. The occurrences of the targets have intensity values significantly different to the distribution of the residual temporal profile. Unlike the conventional 3-D method, this new algorithm operates on the temporal profile in 1-D space, not in 3-D space, thus having a higher computational efficiency. Experiments with real IR image sequences have proved the validity of the new approach.
机译:提出了一种新算法,该算法解决了在红外图像序列中检测小的移动目标的问题,该序列还包含漂移和不断发展的杂波。通过在单个像素的基础上开发静态背景,目标和云边缘的时间行为模型,创建并测试了以时间轮廓的停滞点(CLSP)的连接线为基准的新算法。分析时间轮廓及其CLSP的偏差,并确定可以通过高斯分布对通过从时间轮廓中减去基线而获得的残余时间轮廓的分布进行建模。目标的出现具有与剩余时间轮廓的分布明显不同的强度值。与传统的3-D方法不同,此新算法在1-D空间而不是3-D空间中的时间轮廓上运行,因此具有较高的计算效率。用真实的红外图像序列进行的实验证明了该方法的有效性。

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