Literature DB >> 19041947

Time sequence diffeomorphic metric mapping and parallel transport track time-dependent shape changes.

Anqi Qiu1, Marilyn Albert, Laurent Younes, Michael I Miller.   

Abstract

Serial MRI human brain scans have facilitated the detection of brain development and of the earliest signs of neuropsychiatric and neurodegenerative diseases, monitoring disease progression, and resolving drug effects in clinical trials for preventing or slowing the rate of brain degeneration. To track anatomical shape changes in serial images, we introduce new point-based time sequence large deformation diffeomorphic metric mapping (TS-LDDMM) to infer the time flow of within-subject geometric shape changes that carry known observations through a period. Its Euler-Lagrange equation is generalized for anatomies whose shapes are characterized by point sets, such as landmarks, curves, and surfaces. The time-dependent momentum obtained from the TS-LDDMM encodes within-subject shape changes. For the purpose of across-subject shape comparison, we then propose a diffeomorphic analysis framework to translate within-subject deformation in a global template without incorporating across-subject anatomical variations via parallel transport technique. The analysis involves the retraction of the within-subject time-dependent momentum along the TS-LDDMM trajectory from each time to the baseline, the translation of the momentum in a global template, and the reconstruction of the TS-LDDMM trajectory starting from the global template.

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Year:  2008        PMID: 19041947      PMCID: PMC2718697          DOI: 10.1016/j.neuroimage.2008.10.039

Source DB:  PubMed          Journal:  Neuroimage        ISSN: 1053-8119            Impact factor:   6.556


  51 in total

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7.  Lagrangian frame diffeomorphic image registration: Morphometric comparison of human and chimpanzee cortex.

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8.  Large Deformation Diffeomorphic Metric Curve Mapping.

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10.  Longitudinal cortical registration for developing neonates.

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  16 in total

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2.  Evolutions equations in computational anatomy.

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3.  Registration of longitudinal brain image sequences with implicit template and spatial-temporal heuristics.

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4.  Temporally diffeomorphic cardiac motion estimation from three-dimensional echocardiography by minimization of intensity consistency error.

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5.  Efficient Parallel Transport in the Group of Diffeomorphisms via Reduction to the Lie Algebra.

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6.  Bayesian Covariate Selection in Mixed-Effects Models For Longitudinal Shape Analysis.

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8.  Toward a comprehensive framework for the spatiotemporal statistical analysis of longitudinal shape data.

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Review 10.  The emerging discipline of Computational Functional Anatomy.

Authors:  Michael I Miller; Anqi Qiu
Journal:  Neuroimage       Date:  2008-11-10       Impact factor: 6.556

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