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Temporal Data Mining of HIV Registries: Results from a 25 Years Follow-Up

机译:HIV注册表的时间数据挖掘:25年后续后续的结果

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The Human Immunodeficiency Virus (HIV) causes a pandemic infection in humans, with millions of people infected every year. Although the Highly Active Antiretroviral Therapy reduced the number of AIDS cases since 1996 by significantly increasing the disease-free survival time, the therapy failure rate is still high due to HIV treatment complexity. To better understand the changes in the outcomes of HIV patients we have applied temporal data mining techniques to the analysis of the data collected since 1981 by the Infectious Diseases Unit of the Hospital Clinic in Barcelona, Spain. We run a precedence temporal rule extraction algorithm on three different temporal periods, looking for two types of treatment failures: viral failure and toxic failure, corresponding to events of clinical interest to assess the treatment outcomes. The analysis allowed to extract different typical patterns related to each period and to meaningfully interpret the previous and current behaviour of HIV therapy.
机译:人类免疫缺陷病毒(艾滋病毒)对人类的大流行感染,每年都有数百万人感染。虽然高度活跃的抗逆转录病毒治疗减少了自1996年以来,通过显着增加无疾病存活时间,因此由于艾滋病毒治疗复杂性,治疗失败率仍然很高。为了更好地了解HIV患者结果的变化,我们将临时数据挖掘技术应用于自1981年以来的医院诊所,西班牙的医院诊所的传染病单位分析。我们在三个不同的时间内运行优先的时间规则提取算法,寻找两种类型的治疗失败:病毒失败和毒性衰竭,对应于评估治疗结果的临床兴趣事件。分析允许提取与每个时期相关的不同典型模式,并有意义地解释HIV治疗的先前和目前行为。

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