首页> 中文期刊> 《癌症中的人工智能(英文)》 >Artificial neural network for prediction of acute kidney injury after liver transplantation for cirrhosis and hepatocellular carcinoma

Artificial neural network for prediction of acute kidney injury after liver transplantation for cirrhosis and hepatocellular carcinoma

         

摘要

Acute kidney injury(AKI)has serious consequences on the prognosis of patients undergoing liver transplantation(LT)for liver cancer and cirrhosis.Artificial neural network(ANN)has recently been proposed as a useful tool in many fields in the setting of solid organ transplantation and surgical oncology,where patient prognosis depends on a multidimensional and nonlinear relationship between variables pertaining to the surgical procedure,the donor(graft characteristics),and the recipient comorbidities.In the specific case of LT,ANN models have been developed mainly to predict survival in patients with cirrhosis,to assess the best donor-to-recipient match during allocation processes,and to foresee postoperative complications and outcomes.This is a specific opinion review on the role of ANN in the prediction of AKI after LT for liver cancer and cirrhosis,highlighting potential strengths of the method to forecast this serious postoperative complication.

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