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Characterizing ASD Subtypes Using Morphological Features from sMRI with Unsupervised Learning

Allbwn ymchwil: Pennod mewn Llyfr/Adroddiad/Trafodion CynhadleddPennodadolygiad gan gymheiriaid

2 Dyfyniadau (Scopus)

Crynodeb

In this study, we attempted to identify the subtypes of autism spectrum disorder (ASD) with the help of anatomical alterations found in structural magnetic resonance imaging (sMRI) data of the ASD brain and machine learning tools. Initially, the sMRI data was preprocessed using the FreeSurfer toolbox. Further, the brain regions were segmented into 148 regions of interest using the Destrieux atlas. Features such as volume, thickness, surface area, and mean curvature were extracted for each brain region. We performed principal component analysis independently on the volume, thickness, surface area, and mean curvature features and identified the top 10 features. Further, we applied k-means clustering on these top 10 features and validated the number of clusters using Elbow and Silhouette method. Our study identified two clusters in the dataset which significantly shows the existence of two subtypes in ASD. We identified the features such as volume of scaled lh_G_front middle, thickness of scaled rh_S_temporal transverse, area of scaled lh_S_temporal sup, and mean curvature of scaled lh_G_precentral as the significant features discriminating the two clusters with statistically significant p-value (p<0.05). Thus, our proposed method is effective for the identification of ASD subtypes and can also be useful for the screening of other similar neurological disorders.

Iaith wreiddiolSaesneg
TeitlIntelligent Health Systems – From Technology to Data and Knowledge
Is-deitlProceedings of the 35th Medical Informatics Europe Conference, MIE 2025
CyhoeddwrIOS Press
Tudalennau1403-1407
Nifer y tudalennau5
Cyfrol327
ISBN (Electronig)9781643685960
Dynodwyr Gwrthrych Digidol (DOIs)
StatwsCyhoeddwyd - 15 Mai 2025
Digwyddiad35th Medical Informatics Europe Conference, MIE 2025: ‘Intelligent Health Systems – From Technology to Data and Knowledge’ - Glasgow, Y Deyrnas Unedig
Hyd: 19 Mai 202521 Mai 2025

Cyfres gyhoeddiadau

EnwStudies in health technology and informatics
ISSN (Argraffiad)0926-9630

Cynhadledd

Cynhadledd35th Medical Informatics Europe Conference, MIE 2025
Gwlad/TiriogaethY Deyrnas Unedig
DinasGlasgow
Cyfnod19/05/2521/05/25

Dyfynnu hyn