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Efficient Temporal Sequence Comparison and Classification Using Gram Matrix Embeddings on a Riemannian Manifold

机译:在黎曼流形上使用Gram矩阵嵌入进行有效的时间序列比较和分类

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In this paper we propose a new framework to compare and classify temporal sequences. The proposed approach captures the underlying dynamics of the data while avoiding expensive estimation procedures, making it suitable to process large numbers of sequences. The main idea is to first embed the sequences into a Riemannian manifold by using positive definite regularized Gram matrices of their Hankelets. The advantages of the this approach are: 1) it allows for using non-Euclidean similarity functions on the Positive Definite matrix manifold, which capture better the underlying geometry than directly comparing the sequences or their Hankel matrices, and 2) Gram matrices inherit desirable properties from the underlying Hankel matrices: their rank measure the complexity of the underlying dynamics, and the order and coefficients of the associated regressive models are invariant to affine transformations and varying initial conditions. The benefits of this approach are illustrated with extensive experiments in 3D action recognition using 3D joints sequences. In spite of its simplicity, the performance of this approach is competitive or better than using state-of-art approaches for this problem. Further, these results hold across a variety of metrics, supporting the idea that the improvement stems from the embedding itself, rather than from using one of these metrics.
机译:在本文中,我们提出了一个新的框架来比较和分类时间序列。所提出的方法捕​​获了数据的基本动态,同时避免了昂贵的估算程序,使其适合处理大量序列。主要思想是首先使用它们的Hankelet的正定正则化Gram矩阵将序列嵌入到黎曼流形中。这种方法的优点是:1)允许在正定矩阵流形上使用非欧几里得相似性函数,与直接比较序列或其汉克矩阵相比,该函数可以更好地捕获底层几何;以及2)革兰氏矩阵继承理想的属性从基础汉克矩阵中得出:它们的等级衡量了基础动力学的复杂性,相关联的回归模型的阶数和系数对于仿射变换和变化的初始条件而言是不变的。使用3D关节序列进行3D动作识别的大量实验说明了这种方法的优势。尽管简单,但此方法的性能还是有竞争力的,甚至比使用最新方法解决此问题要好。此外,这些结果适用于各种度量标准,支持这样的想法,即改进源于嵌入本身,而不是使用这些度量标准之一。

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