Predicting patient survival after liver transplantation using evolutionary multi-objective artificial neural networks

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ObjectiveThe optimal allocation of organs in liver transplantation is a problem that can be resolved using machine-learning techniques. Classical methods of allocation included the assignment of an organ to the first patient on the waiting list without taking into account the characteristics of the donor and/or recipient. In this study, characteristics of the donor, recipient and transplant organ were used to determine graft survival. We utilised a dataset of liver transplants collected by eleven Spanish hospitals that provides data on the survival of patients three months after their operations.

论文关键词:Making decisions rule-based,Multi-objective evolutionary algorithm,Radial basis function neural networks,Liver transplantation,Organ allocations

论文评审过程:Received 14 September 2011, Revised 4 February 2013, Accepted 5 February 2013, Available online 13 March 2013.

论文官网地址:https://doi.org/10.1016/j.artmed.2013.02.004