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Using CHAID Algorithm in Low-Risk Metabolic Syndrome Patients

机译:在低风险代谢综合征患者中使用CHAID算法

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Metabolic Syndrome (MetS), a cluster of more than three cardio-metabolic risk factors, is becoming a major worldwide health problem. CHAD) analysis can bring to front the role of pathogenesis - represented by insulin resistance and measured by Reaven index, and the importance of two-cumulated criteria - as the association of hypertension and obesity, in revealing the likelihood of developing MetS in patients that do not yet account for all condition criteria. The aim of our research was to stress the order of influence of a specific two-cumulated criterion comparative to other MetS criteria comprised into a pathogenic index - the Reaven index (comprising TG and HDL that are two independent MetS diagnosis criterion). CHAD) Decision Tree Algorithm can become an intelligent system to support wise decision-making and to predict the likelihood of developing MetS in patients at low-risk for this condition.
机译:代谢综合征(METS),一组超过三种心态的危险因素,正在成为全球主要的健康问题。 乍得)分析可以向前后发病的作用 - 由胰岛素抵抗和通过Reaven指数衡量的作用,以及两次累积标准的重要性 - 作为高血压和肥胖症的关联,揭示了患者开发Mets的可能性 然而,尚未占所有条件标准。 我们的研究目的是强调特定的双累积标准的影响顺序与致病指数中的其他METS标准 - 重复指数(包含两种独立的METS诊断标准的TG和HDL)。 乍得)决策树算法可以成为一种智能系统,以支持明智的决策,并预测在这种情况下低风险开发患者的患者的可能性。

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