Structured sparse CCA for brain imaging genetics via graph OSCAR

dc.contributor.authorDu, Lei
dc.contributor.authorHuang, Heng
dc.contributor.authorYan, Jingwen
dc.contributor.authorKim, Sungeun
dc.contributor.authorRisacher, Shannon
dc.contributor.authorInlow, Mark
dc.contributor.authorMoore, Jason
dc.contributor.authorSaykin, Andrew J.
dc.contributor.authorShen, Li
dc.contributor.departmentDepartment of Radiology and Imaging Sciences, IU School of Medicineen_US
dc.date.accessioned2016-09-19T20:36:01Z
dc.date.available2016-09-19T20:36:01Z
dc.date.issued2016
dc.description.abstractRecently, structured sparse canonical correlation analysis (SCCA) has received increased attention in brain imaging genetics studies. It can identify bi-multivariate imaging genetic associations as well as select relevant features with desired structure information. These SCCA methods either use the fused lasso regularizer to induce the smoothness between ordered features, or use the signed pairwise difference which is dependent on the estimated sign of sample correlation. Besides, several other structured SCCA models use the group lasso or graph fused lasso to encourage group structure, but they require the structure/group information provided in advance which sometimes is not available.en_US
dc.identifier.citationDu, L., Huang, H., Yan, J., Kim, S., Risacher, S., Inlow, M., … Shen, L. (2016). Structured sparse CCA for brain imaging genetics via graph OSCAR. BMC Systems Biology, 10(3), 335–345. http://doi.org/10.1186/s12918-016-0312-1en_US
dc.identifier.urihttps://hdl.handle.net/1805/10992
dc.publisherBiomed Centralen_US
dc.relation.isversionof10.1186/s12918-016-0312-1en_US
dc.relation.journalBMC Systems Biologyen_US
dc.rightsAttribution 3.0 United States
dc.rights.urihttp://creativecommons.org/licenses/by/3.0/us/
dc.sourcePublisheren_US
dc.subjectBrain imaging geneticsen_US
dc.subjectCanonical correlation analysisen_US
dc.subjectMachine learningen_US
dc.subjectStructured sparse modelen_US
dc.titleStructured sparse CCA for brain imaging genetics via graph OSCARen_US
dc.typeArticleen_US
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