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Background modeling for moving object detection in long-distance imaging through turbulent medium

机译:湍流介质远程成像中运动目标检测的背景建模

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摘要

A basic step in automatic moving objects detection is often modeling the background (i.e., the scene excluding the moving objects). The background model describes the temporal intensity distribution expected at different image locations. Long-distance imaging through atmospheric turbulent medium is affected mainly by blur and spatiotemporal movements in the image, which have contradicting effects on the temporal intensity distribution, mainly at edge locations. This paper addresses this modeling problem theoretically, and experimentally, for various long-distance imaging conditions. Results show that a unimodal distribution is usually a more appropriate model. However, if image deblurring is performed, a multimodal modeling might be more appropriate.
机译:自动运动物体检测的基本步骤通常是对背景(即,排除运动物体的场景)建模。背景模型描述了在不同图像位置处预期的时间强度分布。通过大气湍流介质进行的长距离成像主要受图像中的模糊和时空运动的影响,这对时间强度分布(主要在边缘位置)具有相反的影响。本文在理论上和实验上针对各种远程成像条件解决了该建模问题。结果表明,单峰分布通常是更合适的模型。但是,如果执行图像去模糊,则多峰建模可能更合适。

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