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Object segmentation from a dynamic background using a pixelwise rigidity criterion and application to maritime target recognition

机译:使用像素级刚性准则从动态背景进行对象分割及其在海上目标识别中的应用

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摘要

This paper describes a novel approach for rigid object segmentation from a dynamic background using a pre-recorded video with a moving camera, and we apply it to the problem of vessel segmentation in a maritime video scene. The difficulty of modeling background appearance or/and dynamic, modeling object appearance, and compensating camera motion renders this task very challenging. Therefore, the proposed method only uses a geometric constraint regarding target motion rigidity in order to achieve object segmentation in a full video segment. Such an idea is not new in object segmentation literature, but the novelty in this paper resides in that the target rigidity assumption is implemented at the pixel level, but not at the object scale. This is firstly achieved by deriving a theoretical optic flow model in the neighborhood of each pixel under the 3D rigid motion assumption of object, which is later compared against the observed 2D optic flow model in the neighborhood of a pixel in order to derive a pixelwise rigidity criterion. The latter is further reenforced along individual (pixel) trajectories in a video segment. Finally, a mere thresholding operation allows to quickly extract target from background in a full video segment. Our experiments using real maritime video sequences captured with an airborne camera have shown that the method detects maritime targets accurately.
机译:本文描述了一种新的方法,该方法使用带有移动摄像机的预先录制的视频从动态背景中进行刚性对象分割,并将其应用于海上视频场景中的船只分割问题。对背景外观或/和动态进行建模,对对象外观进行建模以及补偿相机运动的难度使此任务非常具有挑战性。因此,所提出的方法仅使用关于目标运动刚度的几何约束,以便在整个视频片段中实现对象分割。这种想法在对象分割文献中并不陌生,但本文的新颖之处在于,目标刚性假设是在像素级别而不是对象级别实现的。这首先通过在对象的3D刚性运动假设下推导每个像素附近的理论光流模型来实现,然后将其与在像素附近观察到的2D光学流模型进行比较,以得出像素方向的刚度标准。后者沿视频段中的各个(像素)轨迹进一步增强。最后,仅需进行阈值操作即可从完整视频片段中的背景中快速提取目标。我们使用机载摄像机捕获的真实海上视频序列进行的实验表明,该方法可以准确检测海上目标。

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