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Three dimensional transparent structure segmentation and multiple 3D motion estimation from monocular perspective image sequences

机译:单眼透视图像序列的三维透明结构分割与多维运动估计

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A three dimensional scene can be segmented using different cues, such as boundaries, texture, motion, discontinuities of the optical flow, stereo, models for structure, etc. We investigate segmentation based upon one of these cues, namely three dimensional motion. If the scene contain transparent objects, the two dimensional (local) cues are inconsistent, since neighboring points with similar optical flow can correspond to different objects. We present a method for performing three dimensional motion-based segmentation of (possibly) transparent scenes together with recursive estimation of the motion of each independent rigid object from monocular perspective images. Our algorithm is based on a recently proposed method for rigid motion reconstruction and a validation test which allows us to initialize the scheme and detect outliers during the motion estimation procedure. The scheme is tested on challenging real and synthetic image sequences. Segmentation is performed for the Ullmann's experiment of two transparent cylinders rotating about the same axis in opposite directions.
机译:三维场景可以使用不同的线索进行分割,例如光流,立体声,结构模型等边界,纹理,运动,不连续等。我们研究了基于这些提示之一,即三维运动的分割。如果场景包含透明对象,则二维(本地)提示不一致,因为具有相似光流的相邻点可以对应于不同的对象。我们介绍了一种用于执行(可能)透明场景的三维运动基分割的方法以及从单手抄语透视图像的每个独立刚性物体的运动的递归估计。我们的算法基于最近提出的刚性运动重建方法和验证测试,其允许我们在运动估计过程中初始化方案和检测异常值。该方案在具有挑战性的真实和合成图像序列上进行测试。对ULLmann的两个透明圆柱体的实验进行分割,其两个透明圆柱体在相反方向上围绕相同的轴线旋转。

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