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Shifted Subspaces Tracking on Sparse Outlier for Motion Segmentation

机译:稀疏离群值的移位子空间跟踪,用于运动分割

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In low-rank & sparse matrix decomposition,the entries of the sparse part are often assumed to be i.i.d.sampled from a random distribution.But the structure of sparse part,as the central interest of many problems,has been rarely studied.One motivating problem is tracking multiple sparse object flows (motions) in video.We introduce “shifted subspaces tracking (SST)” to segment the motions and recover their trajectories by exploring the low-rank property of background and the shifted subspace property of each motion.SST is composed of two steps,background modeling and flow tracking.In step 1,we propose “semi-soft GoDec” to separate all the motions from the low-rank background L as a sparse outlier S.Its soft-thresholding in updating S significantly speeds up GoDec and facilitates the parameter tuning.In step 2,we update X as S obtained in step 1 and develop “SST algorithm” further decomposing X as X = Pk i=1 L(i)OT (i)+ S+G,wherein L(i) is a low-rank matrix storing the ith flow after transformation (i).SST algorithm solves k sub-problems in sequel by alternating minimization,each of which recovers one L(i) and its (i) by randomized method.Sparsity of L(i) and between-frame affinity are leveraged to save computations.We justify the effectiveness of SST on surveillance video sequences.
机译:在低秩稀疏矩阵分解中,通常假定稀疏部分的条目是从随机分布中抽取的。但是,稀疏部分的结构作为许多问题的核心,很少被研究。一个激励问题正在跟踪视频中的多个稀疏对象流(运动)。我们引入“位移子空间跟踪(SST)”,通过探索背景的低秩属性和每个运动的位移子空间属性来分割运动并恢复其轨迹。在步骤1中,我们建议使用“半软GoDec”将所有低运动背景L的运动分离为稀疏离群S。其软阈值可显着更新S的速度在步骤2中,我们将X更新为在步骤1中获得的S,并开发“ SST算法”,进一步将X分解为X = Pk i = 1 L(i)OT(i)+ S + G,其中L(i)是存储tran后的第i个流的低秩矩阵SST算法通过交替最小化来解决续集中的k个子问题,每个子问题都通过随机方法恢复一个L(i)及其(i).L(i)的稀疏性和帧间亲和力被用来节省计算。我们证明了SST在监控视频序列上的有效性。

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