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Use of machine learning to achieve keratoconus detection skills of a corneal expert.

Eyal CohenDor BankNir SorkinRaja GiryesDavid Varssano
Published in: International ophthalmology (2022)
Using the RF machine-learning algorithm, accuracy of discrimination between normal, suspect irregular and keratoconic corneas approximates that of an experienced corneal expert. Applying machine learning to corneal tomography can facilitate keratoconus screening in large populations as well as off-site screening of refractive surgery candidates.
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