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Short and Medium Term Blood Glucose Prediction Using Multi-objective Grammatical Evolution

机译:使用多目标语法演化的短期和中期血糖预测

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In this paper we investigate the benefits of applying a multi-objective approach for solving a symbolic regression problem by means of grammatical evolution. In particular, we continue with previous research about finding expressions to model the glucose levels in blood of diabetic patients. We use here a multi-objective Grammatical Evolution approach based on NSGA-II algorithm, considering the root mean squared error and an ad-hoc fitness function as objectives. This ad-hoc function is based on the Clarke Error Grid analysis, which is useful for showing the potential danger of mispredictions. Experimental results show that the multi-objective approach improves previous results in terms of Clarke Error Grid analysis reducing the number of dangerous mispredictions.
机译:在本文中,我们调查了通过语法演进来应用多目标方法来解决符号回归问题的好处。 特别是,我们继续研究以前关于发现表达的研究,以模拟糖尿病患者血液中的血糖水平。 我们在这里使用基于NSGA-II算法的多目标语法演化方法,考虑到根均方误差和ad-hoc健身功能作为目标。 此Ad-hoc功能基于Clarke错误网格分析,这对于显示错误预测的潜在危险是有用的。 实验结果表明,多目标方法在克拉克误差网格分析方面提高了先前的结果,减少了危险错误预测的数量。

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