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Potential predictors of type-2 diabetes risk: machine learning, synthetic data and wearable health devices

机译:2型糖尿病风险的潜在预测因子:机器学习,合成数据和可穿戴健康设备

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Abstract Background The aim of a recent research project was the investigation of the mechanisms involved in the onset of type 2 diabetes in the absence of familiarity. This has led to the development of a computational model that recapitulates the aetiology of the disease and simulates the immunological and metabolic alterations linked to type-2 diabetes subjected to clinical, physiological, and behavioural features of prototypical human individuals. Results We analysed the time course of 46,170 virtual subjects, experiencing different lifestyle conditions. We then set up a statistical model able to recapitulate the simulated outcomes. Conclusions The resulting machine learning model adequately predicts the synthetic dataset and can, therefore, be used as a computationally-cheaper version of the detailed mathematical model, ready to be implemented on mobile devices to allow self-assessment by informed and aware individuals. The computational model used to generate the dataset of this work is available as a web-service at the following address: http://kraken.iac.rm.cnr.it/T2DM .
机译:摘要背景研究项目最近的目的是在没有熟悉情况下调查2型糖尿病患者发作的机制。这导致了一种计算模型,其概括了疾病的疾病,并模拟了与临床,生理和行为特征进行的2型糖尿病相关的免疫学和代谢改变。结果我们分析了46,170个虚拟科目的时间过程,体验不同的生活方式条件。然后,我们建立一个能够重新安装模拟结果的统计模型。结论所得到的机器学习模型充分预测合成数据集,因此,可以用作详细数学模型的计算上更便宜的版本,随时可以在移动设备上实现,以允许通过通知和意识的个人进行自我评估。用于生成此工作数据集的计算模型可用作以下地址的Web服务:http://kraken.iac.rm.cnr.it/t2dm。

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