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It's Moving! A Probabilistic Model for Causal Motion Segmentation in Moving Camera Videos

机译:它在移动!移动相机视频中因果运动分割的概率模型

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The human ability to detect and segment moving objects works in the presence of multiple objects, complex background geometry, motion of the observer, and even camouflage. In addition to all of this, the ability to detect motion is nearly instantaneous. While there has been much recent progress in motion segmentation, it still appears we are far from human capabilities. In this work, we derive from first principles a likelihood function for assessing the probability of an optical flow vector given the 2D motion direction of an object. This likelihood uses a novel combination of the angle and magnitude of the optical flow to maximize the information about how objects are moving differently. Using this new likelihood and several innovations in initialization, we develop a motion segmentation algorithm that beats current state-of-the-art methods by a large margin. We compare to five state-of-the-art methods on two established benchmarks, and a third new data set of camouflaged animals, which we introduce to push motion segmentation to the next level.
机译:检测和分段移动物体的人类能力在存在多个物体的存在下工作,复杂的背景几何形状,观察者的运动,甚至伪装。除了所有这些之外,检测运动的能力几乎瞬间。虽然在运动细分中有很多进展,但它仍然似乎我们远非人类能力。在这项工作中,我们从第一个原理获得了评估给定对象的2D运动方向的光流量矢量的概率的似然函数。这种可能性使用光流的角度和大小的新组合来最大化对象如何不同地移动的信息。使用这种新的可能性和初始化的几种创新,我们开发了一种运动分段算法,通过大边距击败当前最先进的方法。我们与两个建立的基准测试的五种最先进的方法,以及第三种新的伪装动物数据集,我们介绍了将运动分段推向下一个级别。

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