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Development of a neural network model for predicting glucose levels in a surgical critical care setting

机译:开发神经网络模型以预测外科重症监护室中的葡萄糖水平

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Development of neural network models for the prediction of glucose levels in critically ill patients through the application of continuous glucose monitoring may provide enhanced patient outcomes. Here we demonstrate the utilization of a predictive model in real-time bedside monitoring. Such modeling may provide intelligent/directed therapy recommendations, guidance, and ultimately automation, in the near future as a means of providing optimal patient safety and care in the provision of insulin drips to prevent hyperglycemia and hypoglycemia.
机译:通过连续血糖监测的应用开发神经网络模型来预测重症患者的血糖水平,可能会改善患者的预后。在这里,我们演示了实时床边监控中预测模型的利用。这样的模型可以在不久的将来提供智能/定向的治疗建议,指导以及最终的自动化,作为在提供胰岛素滴剂以防止高血糖和低血糖的过程中提供最佳患者安全和护理的一种手段。

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