Literature DB >> 21860598

Multiscale Adaptive Regression Models for Neuroimaging Data.

Yimei Li1, Hongtu Zhu, Dinggang Shen, Weili Lin, John H Gilmore, Joseph G Ibrahim.   

Abstract

Neuroimaging studies aim to analyze imaging data with complex spatial patterns in a large number of locations (called voxels) on a two-dimensional (2D) surface or in a 3D volume. Conventional analyses of imaging data include two sequential steps: spatially smoothing imaging data and then independently fitting a statistical model at each voxel. However, conventional analyses suffer from the same amount of smoothing throughout the whole image, the arbitrary choice of smoothing extent, and low statistical power in detecting spatial patterns. We propose a multiscale adaptive regression model (MARM) to integrate the propagation-separation (PS) approach (Polzehl and Spokoiny, 2000, 2006) with statistical modeling at each voxel for spatial and adaptive analysis of neuroimaging data from multiple subjects. MARM has three features: being spatial, being hierarchical, and being adaptive. We use a multiscale adaptive estimation and testing procedure (MAET) to utilize imaging observations from the neighboring voxels of the current voxel to adaptively calculate parameter estimates and test statistics. Theoretically, we establish consistency and asymptotic normality of the adaptive parameter estimates and the asymptotic distribution of the adaptive test statistics. Our simulation studies and real data analysis confirm that MARM significantly outperforms conventional analyses of imaging data.

Entities:  

Year:  2011        PMID: 21860598      PMCID: PMC3158617          DOI: 10.1111/j.1467-9868.2010.00767.x

Source DB:  PubMed          Journal:  J R Stat Soc Series B Stat Methodol        ISSN: 1369-7412            Impact factor:   4.488


  13 in total

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  35 in total

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3.  TwinMARM: two-stage multiscale adaptive regression methods for twin neuroimaging data.

Authors:  Yimei Li; John H Gilmore; Jiaping Wang; Martin Styner; Weili Lin; Hongtu Zhu
Journal:  IEEE Trans Med Imaging       Date:  2012-01-24       Impact factor: 10.048

4.  Longitudinal High-Dimensional Principal Components Analysis with Application to Diffusion Tensor Imaging of Multiple Sclerosis.

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5.  Bayesian spatial transformation models with applications in neuroimaging data.

Authors:  Michelle F Miranda; Hongtu Zhu; Joseph G Ibrahim
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6.  Sex differences in grey matter atrophy patterns among AD and aMCI patients: results from ADNI.

Authors:  Martha Skup; Hongtu Zhu; Yaping Wang; Kelly S Giovanello; Ja-an Lin; Dinggang Shen; Feng Shi; Wei Gao; Weili Lin; Yong Fan; Heping Zhang
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7.  Multivariate semiparametric spatial methods for imaging data.

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8.  Group-wise FMRI activation detection on DICCCOL landmarks.

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9.  FSEM: Functional Structural Equation Models for Twin Functional Data.

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10.  More insights into early brain development through statistical analyses of eigen-structural elements of diffusion tensor imaging using multivariate adaptive regression splines.

Authors:  Yasheng Chen; Hongtu Zhu; Hongyu An; Diane Armao; Dinggang Shen; John H Gilmore; Weili Lin
Journal:  Brain Struct Funct       Date:  2013-03-01       Impact factor: 3.270

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