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Glaucoma progression detection using structural retinal nerve fiber layer measurements and functional visual field points
- Source :
- IEEE transactions on bio-medical engineering, vol 61, iss 4
- Publication Year :
- 2014
- Publisher :
- eScholarship, University of California, 2014.
-
Abstract
- Machine learning classifiers were employed to detect glaucomatous progression using longitudinal series of structural data extracted from retinal nerve fiber layer thickness measurements and visual functional data recorded from standard automated perimetry tests. Using the collected data, a longitudinal feature vector was created for each patient's eye by computing the norm 1 difference vector of the data at the baseline and at each follow-up visit. The longitudinal features from each patient's eye were then fed to the machine learning classifier to classify each eye as stable or progressed over time. This study was performed using several machine learning classifiers including Bayesian, Lazy, Meta, and Tree, composing different families. Combinations of structural and functional features were selected and ranked to determine the relative effectiveness of each feature. Finally, the outcomes of the classifiers were assessed by several performance metrics and the effectiveness of structural and functional features were analyzed.
- Subjects :
- Male
Computer science
biomedical signal processing
Optic disk
Nerve fiber layer
Glaucoma
Neurodegenerative
Eye
chemistry.chemical_compound
Computer-Assisted
Models
80 and over
Computer vision
change detection
Aged, 80 and over
Signal Processing, Computer-Assisted
Statistical
Middle Aged
Visual field
Meridian (perimetry, visual field)
medicine.anatomical_structure
machine learning
Feature (computer vision)
Disease Progression
Female
Artificial Intelligence and Image Processing
Feature vector
Feature extraction
Optic Disk
Biomedical Engineering
Article
Retina
Naive Bayes classifier
Optical imaging
Artificial Intelligence
medicine
Humans
Electrical and Electronic Engineering
Eye Disease and Disorders of Vision
Aged
Models, Statistical
Learning classifier system
business.industry
Neurosciences
Retinal
Pattern recognition
medicine.disease
chemistry
ROC Curve
Signal Processing
glaucoma progression
Artificial intelligence
Visual Fields
business
Subjects
Details
- Database :
- OpenAIRE
- Journal :
- IEEE transactions on bio-medical engineering, vol 61, iss 4
- Accession number :
- edsair.doi.dedup.....abb72d2151bd13bb2bb5ab6614fc0c87