论文标题

提出一个基于堆叠的合奏分类器的两步决策支持系统(TPI),以解决早期和低成本(步骤1)和最终(步骤2)差异性结核分枝杆菌的差异(步骤2)差异(步骤2)。

Proposing a two-step Decision Support System (TPIS) based on Stacked ensemble classifier for early and low cost (step-1) and final (step-2) differential diagnosis of Mycobacterium Tuberculosis from non-tuberculosis Pneumonia

论文作者

Khatibi, Toktam, Farahani, Ali, Sarmadian, Hossein

论文摘要

背景:结核分枝杆菌(TB)是一种传染性细菌疾病,表现出与肺炎相似的症状。因此,区分结核病和肺炎是具有挑战性的。因此,这项研究的主要目的是提出一种自动方法,用于从肺炎诊断结核病。方法:在这项研究中,提出了一个名为TPI的两步决策支持系统,用于基于堆叠的集合分类器对肺炎的结核病诊断。我们提出的模型的第一步旨在基于低成本特征(包括人口统计学特征和患者症状(包括18个特征))的早期诊断。 TPI的第二步根据实验室测试和胸部射线照相报告中提取的元特征做出了最终决定。这项回顾性研究考虑了患有结核病或肺炎的患者的199例患者病历,该患者已在伊朗阿拉克的一家医院注册。结果:实验结果表明,TPI的表现优于比较机器学习方法,用于早期降低肺炎肺结核的早期差异诊断,AUC为90.26,精度为91.37,最终决策的准确性为92.81,精度为93.89。结论:早期诊断的主要优点正在开始治疗程序,以尽快确定地诊断患者并防止治疗潜伏期。因此,早期诊断减少了两种疾病晚期治疗的成熟。

Background: Mycobacterium Tuberculosis (TB) is an infectious bacterial disease presenting similar symptoms to pneumonia; therefore, differentiating between TB and pneumonia is challenging. Therefore, the main aim of this study is proposing an automatic method for differential diagnosis of TB from Pneumonia. Methods: In this study, a two-step decision support system named TPIS is proposed for differential diagnosis of TB from pneumonia based on stacked ensemble classifiers. The first step of our proposed model aims at early diagnosis based on low-cost features including demographic characteristics and patient symptoms (including 18 features). TPIS second step makes the final decision based on the meta features extracted in the first step, the laboratory tests and chest radiography reports. This retrospective study considers 199 patient medical records for patients suffering from TB or pneumonia, which has been registered in a hospital in Arak, Iran. Results: Experimental results show that TPIS outperforms the compared machine learning methods for early differential diagnosis of pulmonary tuberculosis from pneumonia with AUC of 90.26 and accuracy of 91.37 and final decision making with AUC of 92.81 and accuracy of 93.89. Conclusions: The main advantage of early diagnosis is beginning the treatment procedure for confidently diagnosed patients as soon as possible and preventing latency in treatment. Therefore, early diagnosis reduces the maturation of late treatment of both diseases.

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