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Improved motion segmentation using Locally sampled Subspaces

机译:使用局部采样子空间改善运动分割

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Motion segmentation is an importrant component of various video processing applications. In this paper an effective method for motion segmentation is presented. The method adopts the affine camera model. Initially, a local algorithm is applied to sample 4-subsets from the available trajectories. The Ordered Residual Kernel is then employed to measure similarities between trajectories. The algorithm proceeds by applying FastMap on the computed kernel matrix as a dimensionality reduction technique. The embedded vectors are used to produce an affinity matrix. Finally, spectral clustering is performed on the computed affinity matrix. Experiments on the Hopkins155 database demonstrate the robustness of the method to noise and its efficacy compared to existing approaches.
机译:运动分割是各种视频处理应用程序的重要组成部分。本文提出了一种有效的运动分割方法。该方法采用仿射相机模型。最初,将局部算法应用于来自可用轨迹的4个子集样本。然后使用有序残差核来测量轨迹之间的相似性。该算法通过将FastMap应用于计算的内核矩阵来进行降维。嵌入的向量用于生成亲和矩阵。最后,对计算的亲和度矩阵执行光谱聚类。在Hopkins155数据库上进行的实验表明,与现有方法相比,该方法对噪声的鲁棒性及其有效性。

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