Direct Rating Estimation of Enlarged Perivascular Spaces (EPVS) in Brain MRI Using Deep Neural Network

  • Yang, Ehwa
  • Gonuguntla, Venkateswarlu
  • Moon, Won-Jin
  • Moon, Yeonsil
  • Kim, Hee-Jin
  • 외 2명
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초록

In this article, we propose a deep-learning-based estimation model for rating enlarged perivascular spaces (EPVS) in the brain's basal ganglia region using T2-weighted magnetic resonance imaging (MRI) images. The proposed method estimates the EPVS rating directly from the T2-weighted MRI without using either the detection or the segmentation of EVPS. The model uses the cropped basal ganglia region on the T2-weighted MRI. We formulated the rating of EPVS as a multi-class classification problem. Model performance was evaluated using 96 subjects' T2-weighted MRI data that were collected from two hospitals. The results show that the proposed method can automatically rate EPVS-demonstrating great potential to be used as a risk indicator of dementia to aid early diagnosis.

키워드

brainmagnetic resonance imagingenlarged perivascular spacesdeep learningdementiaVIRCHOW-ROBIN SPACESSMALL VESSEL DISEASESEGMENTATIONDEMENTIAMODEL
제목
Direct Rating Estimation of Enlarged Perivascular Spaces (EPVS) in Brain MRI Using Deep Neural Network
저자
Yang, EhwaGonuguntla, VenkateswarluMoon, Won-JinMoon, YeonsilKim, Hee-JinPark, MinaKim, Jae-Hun
DOI
10.3390/app11209398
발행일
2021-10
유형
Article
저널명
APPLIED SCIENCES-BASEL
11
20
페이지
1 ~ 10

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