集合法对肺结核的初步诊断

Rusdah, E. Winarko, Retantyo Wardoyo
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引用次数: 9

摘要

结核病(TB)是最古老的人类疾病,在传染病中死亡率最高。印度尼西亚是世界上结核病负担第五大国家。结核病的诊断是困难的,特别是在儿科患者、肺外结核和涂片阴性肺结核的情况下。此外,肺结核的一些症状不仅与肺癌有共同之处,而且与其他疾病也有共同之处。这种情况将导致延误正确的诊断和暴露于不适当的药物。最后,接受不充分治疗的个人更容易患上耐多药结核病。本研究旨在模拟肺结核的初步诊断。初步诊断只能通过患者人口统计资料、记忆和体格检查来确定。利用分类技术进行了一些实验。将C4.5、朴素贝叶斯、反向传播和支持向量机等单一分类器与集成方法进行比较,以提高模型的性能。数据来源于雅加达呼吸中心肺结核患者的病历。结果表明,与单一分类器相比,集成方法提供了最好的准确率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Preliminary diagnosis of pulmonary tuberculosis using ensemble method
Tuberculosis (TB) is the oldest human diseases with the highest mortality rates among infectious disease. Indonesia is the fifth highest TB burden country in the world. Diagnosis of TB is difficult, especially in the case of pediatric patients, extrapulmonary TB and smear-negative pulmonary TB. In addition, some of the tuberculosis symptoms have in common not only with lung cancer but also with other diseases. This situation will lead to a delay in the correct diagnosis and exposure to the inappropriate medication. Finally, individuals that receive inadequate treatment are more vulnerable to develop multidrug-resistant tuberculosis. This study aims to model the preliminary diagnosis of pulmonary tuberculosis. Preliminary diagnosis is established only by using patient demographic data, anamnesis, and physical examination. Some experiments were conducted using classification techniques. Some single classifiers such as C4.5, Naive Bayes, Backpropagation and SVM will be compared with ensemble method in order to improve the performance of the model. The data were taken from medical record of tuberculosis patients from Jakarta Respiratory Center. The result showed that ensemble method provided the best accuracy compared to the single classifier.
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