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Automatic morphological classification of mitral valve diseases in echocardiographic images based on explainable deep learning methods.

Majid VafaeezadehHamid BehnamAli HosseinsabetParisa Gifani
Published in: International journal of computer assisted radiology and surgery (2021)
We suggest an explainable, fully automated, and rule-based procedure to classify the four types of mitral valve morphologies based on Carpentier's functional classification using deep learning on transthoracic echocardiographic images. Our study results infer the feasibility of the use of deep learning models to prepare quick and precise assessments of mitral valve morphologies in echocardiograms. According to our knowledge, our study is the first one that provides a public data set regarding the Carpentier classification of MV pathologies.
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