Optimized Combination of Multiple Graphs With Application to the Integration of Brain Imaging and (epi)Genomics Data.
Journal
IEEE transactions on medical imaging
ISSN: 1558-254X
Titre abrégé: IEEE Trans Med Imaging
Pays: United States
ID NLM: 8310780
Informations de publication
Date de publication:
06 2020
06 2020
Historique:
pubmed:
12
12
2019
medline:
25
6
2021
entrez:
12
12
2019
Statut:
ppublish
Résumé
With the rapid development of high-throughput technologies, a growing amount of multi-omics data are collected, giving rise to a great demand for combining such data for biomedical discovery. Due to the cost and time to label the data manually, the number of labelled samples is limited. This motivated the need for semi-supervised learning algorithms. In this work, we applied a graph-based semi-supervised learning (GSSL) to classify a severe chronic mental disorder, schizophrenia (SZ). An advantage of GSSL is that it can simultaneously analyse more than two types of data, while many existing models focus on pairwise data analysis. In particular, we applied GSSL to the analysis of single nucleotide polymorphism (SNP), functional magnetic resonance imaging (fMRI) and DNA methylation data, which accounts for genetics, brain imaging (endophenotypes), and environmental factors (epigenomics) respectively. While parameter selection has been an open challenge for most models, another key contribution of this work is that we explored the parameter space to interpret their meaning and established practical guidelines. Based on the practical significance of each hyper-parameter, a relatively small range of candidate values can be determined in a data-driven way to both optimize and speed up the parameter tuning process. We validated the model through both synthetic data and a real SZ dataset of 184 subjects from the Mental Illness and Neuroscience Discovery (MIND) Clinical Imaging Consortium. In comparison to several existing approaches, our algorithm achieved better performance in terms of classification accuracy. We also confirmed the significance of several brain regions associated with SZ.
Identifiants
pubmed: 31825864
doi: 10.1109/TMI.2019.2958256
pmc: PMC7394342
mid: NIHMS1600366
doi:
Types de publication
Journal Article
Research Support, N.I.H., Extramural
Research Support, U.S. Gov't, Non-P.H.S.
Langues
eng
Sous-ensembles de citation
IM
Pagination
1801-1811Subventions
Organisme : NIBIB NIH HHS
ID : R01 EB006841
Pays : United States
Organisme : NIA NIH HHS
ID : RF1 AG063153
Pays : United States
Organisme : NIGMS NIH HHS
ID : R01 GM109068
Pays : United States
Organisme : NIA NIH HHS
ID : U19 AG055373
Pays : United States
Organisme : NIMH NIH HHS
ID : R01 MH104680
Pays : United States
Organisme : NIMH NIH HHS
ID : R01 MH107354
Pays : United States
Organisme : NIBIB NIH HHS
ID : R01 EB020407
Pays : United States
Organisme : NIGMS NIH HHS
ID : P20 GM103472
Pays : United States
Organisme : NIMH NIH HHS
ID : R01 MH118695
Pays : United States
Organisme : NIBIB NIH HHS
ID : R01 EB005846
Pays : United States
Organisme : NIMH NIH HHS
ID : R01 MH094524
Pays : United States
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