Published April 24, 2019 | Version v1
Journal article Open

Radiomics textural features extracted from subcortical structures of Gray matter probability for Alzheimers disease detection

Description

Alzheimer’s disease (AD) is characterized by a progressive deterioration of cognitive and behavioural functions as a result of the atrophy of specific regions of the brain. It is estimated that by 2050 there will be 131.5 million people affected. Thus, there is an urgent need to find biological markers for its early detection and monitoring. In this work, it is present an analysis of textural radiomics features extracted from a gray matter probability volume, in a set of individual subcortical regions, from a number of different atlases, to identify subject with AD in a MRI. Also, significant subcortical regions for AD detection have been identified using a ReliefF relevance test. Experimental results using the ADNI1 database have proven the potential of some of the tested radiomic features as possible biomarkers for AD/CN differentiation.

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Funding

IASIS – Integration and analysis of heterogeneous big data for precision medicine and suggested treatments for different types of patients 727658
European Commission