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轨迹空间:运动非刚体结构的双重表示。

Trajectory Space: A Dual Representation for Nonrigid Structure from Motion.

出版信息

IEEE Trans Pattern Anal Mach Intell. 2011 Jul;33(7):1442-56. doi: 10.1109/TPAMI.2010.201. Epub 2010 Nov 18.

Abstract

Existing approaches to nonrigid structure from motion assume that the instantaneous 3D shape of a deforming object is a linear combination of basis shapes. These bases are object dependent and therefore have to be estimated anew for each video sequence. In contrast, we propose a dual approach to describe the evolving 3D structure in trajectory space by a linear combination of basis trajectories. We describe the dual relationship between the two approaches, showing that they both have equal power for representing 3D structure. We further show that the temporal smoothness in 3D trajectories alone can be used for recovering nonrigid structure from a moving camera. The principal advantage of expressing deforming 3D structure in trajectory space is that we can define an object independent basis. This results in a significant reduction in unknowns and corresponding stability in estimation. We propose the use of the Discrete Cosine Transform (DCT) as the object independent basis and empirically demonstrate that it approaches Principal Component Analysis (PCA) for natural motions. We report the performance of the proposed method, quantitatively using motion capture data, and qualitatively on several video sequences exhibiting nonrigid motions, including piecewise rigid motion, partially nonrigid motion (such as a facial expressions), and highly nonrigid motion (such as a person walking or dancing).

摘要

现有的非刚性运动结构估计方法假设变形物体的瞬时 3D 形状是基础形状的线性组合。这些基础形状是与物体相关的,因此必须为每个视频序列重新估计。相比之下,我们提出了一种对偶方法,通过基础轨迹的线性组合来描述轨迹空间中不断变化的 3D 结构。我们描述了这两种方法之间的对偶关系,表明它们都具有同等的能力来表示 3D 结构。我们进一步表明,仅在 3D 轨迹中的时间平滑度就可以用于从运动相机中恢复非刚性结构。在轨迹空间中表示变形 3D 结构的主要优点是,我们可以定义一个与物体无关的基础。这导致未知量的显著减少和估计的稳定性。我们建议使用离散余弦变换(DCT)作为与物体无关的基础,并通过实验证明它接近自然运动的主成分分析(PCA)。我们使用运动捕捉数据对所提出的方法进行定量评估,并对包括分段刚性运动、部分非刚性运动(如面部表情)和高度非刚性运动(如人行走或跳舞)的几个视频序列进行定性评估。

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