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Machine learning approaches using blood biomarkers in nonalcoholic fatty liver diseases
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作者 Randhall B Carteri Mateus Grellert +2 位作者 daniela luisa borba Claudio Augusto Marroni Sabrina Alves Fernandes 《Artificial Intelligence in Gastroenterology》 2022年第3期80-87,共8页
The prevalence of nonalcoholic fatty liver disease(NAFLD)is an important public health concern.Early diagnosis of NAFLD and potential progression to nonalcoholic steatohepatitis(NASH),could reduce the further advance ... The prevalence of nonalcoholic fatty liver disease(NAFLD)is an important public health concern.Early diagnosis of NAFLD and potential progression to nonalcoholic steatohepatitis(NASH),could reduce the further advance of the disease,and improve patient outcomes.Aiming to support patient diagnostic and predict specific outcomes,the interest in artificial intelligence(AI)methods in hepatology has dramatically increased,especially with the application of lessinvasive biomarkers.In this review,our objective was twofold:Firstly,we presented the most frequent blood biomarkers in NAFLD and NASH and secondly,we reviewed recent literature regarding the use of machine learning(ML)methods to predict NAFLD and NASH in large cohorts.Strikingly,these studies provide insights into ML application in NAFLD patients'prognostics and ranked blood biomarkers are able to provide a recognizable signature allowing cost-effective NAFLD prediction and also differentiating NASH patients.Future studies should consider the limitations in the current literature and expand the application of these algorithms in different populations,fortifying an already promising tool in medical science. 展开更多
关键词 Artificial intelligence Liver diseases Healthcare HEPATOLOGY PROGNOSIS DIAGNOSTICS
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