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Simultaneous Video Stabilization and Moving Object Detection in Turbulence

机译:湍流中的同时视频稳定和运动物体检测

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Turbulence mitigation refers to the stabilization of videos with nonuniform deformations due to the influence of optical turbulence. Typical approaches for turbulence mitigation follow averaging or dewarping techniques. Although these methods can reduce the turbulence, they distort the independently moving objects, which can often be of great interest. In this paper, we address the novel problem of simultaneous turbulence mitigation and moving object detection. We propose a novel three-term low-rank matrix decomposition approach in which we decompose the turbulence sequence into three components: the background, the turbulence, and the object. We simplify this extremely difficult problem into a minimization of nuclear norm, Frobenius norm, and ell_{1} norm. Our method is based on two observations: First, the turbulence causes dense and Gaussian noise and therefore can be captured by Frobenius norm, while the moving objects are sparse and thus can be captured by ell_{1} norm. Second, since the object's motion is linear and intrinsically different from the Gaussian-like turbulence, a Gaussian-based turbulence model can be employed to enforce an additional constraint on the search space of the minimization. We demonstrate the robustness of our approach on challenging sequences which are significantly distorted with atmospheric turbulence and include extremely tiny moving objects.
机译:湍流缓解是指由于光学湍流的影响而使视频具有不均匀变形的稳定。减轻湍流的典型方法是采用平均或变形技术。尽管这些方法可以减少湍流,但它们会使独立移动的对象变形,这通常引起人们的极大兴趣。在本文中,我们解决了同时减轻湍流和移动物体检测的新问题。我们提出了一种新颖的三阶低秩矩阵分解方法,在该方法中,我们将湍流序列分解为三个部分:背景,湍流和物体。我们将这个极其困难的问题简化为最小化核规范,Frobenius规范和ell_ {1}规范。我们的方法基于两个观察结果:首先,湍流会引起密集的高斯噪声,因此可以由Frobenius范数捕获,而运动对象稀疏,因此可以由ell_ {1}范数捕获。其次,由于对象的运动是线性的并且本质上不同于高斯型湍流,因此可以采用基于高斯的湍流模型对最小化的搜索空间施加附加约束。我们证明了我们的方法在具有挑战性的序列上的鲁棒性,这些序列由于大气湍流而明显失真,并且包括极小的运动物体。

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