Literature DB >> 26973982

Manifold-valued Dirichlet Processes.

Hyunwoo J Kim1, Jia Xu1, Baba C Vemuri2, Vikas Singh1.   

Abstract

Statistical models for manifold-valued data permit capturing the intrinsic nature of the curved spaces in which the data lie and have been a topic of research for several decades. Typically, these formulations use geodesic curves and distances defined locally for most cases - this makes it hard to design parametric models globally on smooth manifolds. Thus, most (manifold specific) parametric models available today assume that the data lie in a small neighborhood on the manifold. To address this 'locality' problem, we propose a novel nonparametric model which unifies multivariate general linear models (MGLMs) using multiple tangent spaces. Our framework generalizes existing work on (both Euclidean and non-Euclidean) general linear models providing a recipe to globally extend the locally-defined parametric models (using a mixture of local models). By grouping observations into sub-populations at multiple tangent spaces, our method provides insights into the hidden structure (geodesic relationships) in the data. This yields a framework to group observations and discover geodesic relationships between covariates X and manifold-valued responses Y, which we call Dirichlet process mixtures of multivariate general linear models (DP-MGLM) on Riemannian manifolds. Finally, we present proof of concept experiments to validate our model.

Entities:  

Year:  2015        PMID: 26973982      PMCID: PMC4783460     

Source DB:  PubMed          Journal:  JMLR Workshop Conf Proc        ISSN: 1938-7288


  10 in total

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5.  Statistical analysis of tensor fields.

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9.  A NOVEL DYNAMIC SYSTEM IN THE SPACE OF SPD MATRICES WITH APPLICATIONS TO APPEARANCE TRACKING.

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10.  Canonical Correlation Analysis on Riemannian Manifolds and Its Applications.

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  10 in total
  3 in total

1.  Abundant Inverse Regression using Sufficient Reduction and its Applications.

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2.  Riemannian Nonlinear Mixed Effects Models: Analyzing Longitudinal Deformations in Neuroimaging.

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3.  Latent Variable Graphical Model Selection using Harmonic Analysis: Applications to the Human Connectome Project (HCP).

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  3 in total

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