Literature DB >> 31054076

Imputation Strategy for Reliable Regional MRI Morphological Measurements.

Shaina Sta Cruz1,2, Ivo D Dinov3,4, Megan M Herting5,6, Clio González-Zacarías3,7, Hosung Kim3, Arthur W Toga3, Farshid Sepehrband8.   

Abstract

Regional morphological analysis represents a crucial step in most neuroimaging studies. Results from brain segmentation techniques are intrinsically prone to certain degrees of variability, mainly as results of suboptimal segmentation. To reduce this inherent variability, the errors are often identified through visual inspection and then corrected (semi)manually. Identification and correction of incorrect segmentation could be very expensive for large-scale studies. While identification of the incorrect results can be done relatively fast even with manual inspection, the correction step is extremely time-consuming, as it requires training staff to perform laborious manual corrections. Here we frame the correction phase of this problem as a missing data problem. Instead of manually adjusting the segmentation outputs, our computational approach aims to derive accurate morphological measures by machine learning imputation. Data imputation techniques may be used to replace missing or incorrect region average values with carefully chosen imputed values, all of which are computed based on other available multivariate information. We examined our approach of correcting segmentation outputs on a cohort of 970 subjects, which were undergone an extensive, time-consuming, manual post-segmentation correction. A random forest imputation technique recovered the gold standard results with a significant accuracy (r = 0.93, p < 0.0001; when 30% of the segmentations were considered incorrect in a non-random fashion). The random forest technique proved to be most effective for big data studies (N > 250).

Entities:  

Keywords:  Big data; Brain segmentation; FreeSurfer; Imputation; Post-segmentation correction; Random forest

Mesh:

Year:  2020        PMID: 31054076      PMCID: PMC6829024          DOI: 10.1007/s12021-019-09426-x

Source DB:  PubMed          Journal:  Neuroinformatics        ISSN: 1539-2791


  48 in total

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Journal:  Cereb Cortex       Date:  2004-01       Impact factor: 5.357

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Journal:  Neuroimage       Date:  2006-03-10       Impact factor: 6.556

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Authors:  Elias L Gedamu; D L Collins; Douglas L Arnold
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Review 4.  Missing data analysis: making it work in the real world.

Authors:  John W Graham
Journal:  Annu Rev Psychol       Date:  2009       Impact factor: 24.137

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Journal:  IEEE Trans Med Imaging       Date:  1998-02       Impact factor: 10.048

6.  Adaptive non-local means denoising of MR images with spatially varying noise levels.

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Journal:  J Magn Reson Imaging       Date:  2010-01       Impact factor: 4.813

7.  Brain development during adolescence: A mixed-longitudinal investigation of cortical thickness, surface area, and volume.

Authors:  Nandita Vijayakumar; Nicholas B Allen; George Youssef; Meg Dennison; Murat Yücel; Julian G Simmons; Sarah Whittle
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8.  Measuring the thickness of the human cerebral cortex from magnetic resonance images.

Authors:  B Fischl; A M Dale
Journal:  Proc Natl Acad Sci U S A       Date:  2000-09-26       Impact factor: 11.205

9.  Accuracy and reliability of automated gray matter segmentation pathways on real and simulated structural magnetic resonance images of the human brain.

Authors:  Lucas D Eggert; Jens Sommer; Andreas Jansen; Tilo Kircher; Carsten Konrad
Journal:  PLoS One       Date:  2012-09-18       Impact factor: 3.240

10.  Comparison of imputation methods for missing laboratory data in medicine.

Authors:  Akbar K Waljee; Ashin Mukherjee; Amit G Singal; Yiwei Zhang; Jeffrey Warren; Ulysses Balis; Jorge Marrero; Ji Zhu; Peter Dr Higgins
Journal:  BMJ Open       Date:  2013-08-01       Impact factor: 2.692

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4.  Global and Regional Changes in Perivascular Space in Idiopathic and Familial Parkinson's Disease.

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