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DWI-based neural fingerprinting technology: A preliminary study on stroke analysis

  • Chenfei Ye
  • , Heather Ting Ma*
  • , Jun Wu
  • , Pengfei Yang
  • , Xuhui Chen
  • , Zhengyi Yang
  • , Jingbo Ma
  • *Corresponding author for this work
  • Harbin Institute of Technology Shenzhen
  • Peking University
  • University of Queensland

Research output: Contribution to journalArticlepeer-review

Abstract

Stroke is a common neural disorder in neurology clinics. Magnetic resonance imaging (MRI) has become an important tool to assess the neural physiological changes under stroke, such as diffusion weighted imaging (DWI) and diffusion tensor imaging (DTI). Quantitative analysis of MRI images would help medical doctors to localize the stroke area in the diagnosis in terms of structural information and physiological characterization. However, current quantitative approaches can only provide localization of the disorder rather than measure physiological variation of subtypes of ischemic stroke. In the current study, we hypothesize that each kind of neural disorder would have its unique physiological characteristics, which could be reflected by DWI images on different gradients. Based on this hypothesis, a DWI-based neural fingerprinting technology was proposed to classify subtypes of ischemic stroke. The neural fingerprint was constructed by the signal intensity of the region of interest (ROI) on the DWI images under different gradients. The fingerprint derived from the manually drawn ROI could classify the subtypes with accuracy 100%. However, the classification accuracy was worse when using semiautomatic and automatic method in ROI segmentation. The preliminary results showed promising potential of DWI-based neural fingerprinting technology in stroke subtype classification. Further studies will be carried out for enhancing the fingerprinting accuracy and its application in other clinical practices.

Original languageEnglish
Article number725052
JournalBioMed Research International
Volume2014
DOIs
StatePublished - 2014
Externally publishedYes

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