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Fuzzy-ART neural networks for triage in pleural tuberculosis

机译:胸膜结核分流的Fuzzy-ART神经网络

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Triage in a contagious disease as pleural tuberculosis is essential to send the patients to a correct treatment to cure the ailment. These tools are still a challenge because some invasive standard tests are necessary to detect it. The present work shows two models to do a clustering and classify patients of pleural tuberculosis in three risk groups. This clustering uses Fuzzy-Art neural networks to find these groups in the data. First approach employs just anamneses variables and second methodology uses additional information about some classical result tests. The last approach exhibits best results compared to the approach using anamneses variables. Results for sensitivity are similar in two approaches, presenting 93.75% in the anamneses case and 96.87% using more variables.
机译:胸膜结核在传染性疾病中进行分类对于将患者送至正确的治疗方法以治愈疾病至关重要。这些工具仍然是一个挑战,因为必须进行一些侵入性的标准测试才能对其进行检测。目前的工作显示了两个模型,以对三个风险组的胸膜结核患者进行聚类和分类。该聚类使用模糊艺术神经网络在数据中找到这些组。第一种方法仅使用记忆变量,第二种方法使用有关某些经典结果测试的其他信息。与使用记忆变量的方法相比,最后一种方法显示出最佳结果。两种方法的灵敏度结果相似,在回忆记录中为93.75%,使用更多变量时为96.87%。

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