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Comparative effectiveness for oral anti-diabetic treatments among newly diagnosed type 2 diabetics: data-driven predictive analytics in healthcare

机译:比较口服抗糖尿病的有效性治疗新诊断的2型之一糖尿病患者:数据驱动的预测分析医疗保健

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摘要

A difficult problem in healthcare is predicting who will become very sick in the near future. In our case, we find that the top 10% of newly diagnosed type 2 diabetes patients account for 68% of healthcare utilization. In this paper, we demonstrate how the U.S. healthcare system can provide improved healthcare quality per unit of spend through better predictive data-based analytics applied to the increasingly available troves of healthcare claims data. Specifically, we demonstrate the effectiveness of data mining by applying machine learning methods to large-scale medical and pharmacy claims data for over 65,000 patients newly diagnosed with type 2 diabetes, a common and costly disease globally. This analysis reveals some important heretofore unknown patterns in the cost and quality among of the disease's common treatments and demonstrates the potential for using large-scale data mining for efficiently focusing further inquiry.
机译:医疗预测困难的问题谁将在不久的将来变得非常恶心。我们的例子中,我们发现10%的新诊断2型糖尿病患者占68%的医疗利用率。证明美国的医疗保健系统提高医疗质量的单位通过更好的预测基于数据的花分析应用于越来越多的可用医疗保健索赔数据的搜集。我们将演示数据挖掘的有效性通过应用机器学习方法大规模的医疗和制药索赔数据在65000例新诊断的2型全球糖尿病,一个共同的和昂贵的疾病。这种分析揭示了一些重要的迄今为止未知模式的成本和质量疾病的常见的治疗和演示使用大规模数据挖掘的潜力为有效地聚焦进一步调查。

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