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Analysis of Data Mining for Classification of Obstructive Sleep Apnea in Chronic Obstructive Pulmonary Disease Patients

机译:慢性阻塞性肺病患者阻塞性睡眠呼吸暂停分类的数据挖掘分析

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Chronic obstructive pulmonary disease (COPD) is one of diseases that could cause a problem of significant concomitant chronic disease which increases morbidity and mortality. COPD is characterized by airflow resistance in the airways caused by airway abnormalities or anatomical abnormalities of the lungs or a combination of both. One complication that can occur in patients with COPD is lack of oxygen intake at night. This situation will be further aggravated if people with COPD also suffer from Obstructive Sleep Apnea (OSA) sleep disorders. In this study, we used Information Gain feature selection to determine which features that affect the risk of OSA in COPD patients. After the feature selection process was completed, we used the Random Forest method to classify who has a high risk and who has a low risk of developing OSA in COPD patients. The sample in this study consist of 111 COPD patients with 34 features who were hospitalized in X Hospital during March 2018 to May 2018. From an observational result, after we choose 5 %, 10 %, 20 %, 30 %, 40 %, 50 %, 60 %, 70 %, 82 %, and 100 % best features of total features, the best accuracy is obtained by 10 % of best features total features (4 best features) i.e. 85.71 % with sensitivity and specificity are 71.43 % and 92.86 % respectively. The feature with the highest ranking is waist size.
机译:慢性阻塞性肺病(COPD)是可能导致显着伴随慢性疾病问题的疾病之一,这增加了发病率和死亡率。 COPD的特征在于气道异常或肺部的解剖学异常引起的气道中的气流抗性或两者的组合。 COPD患者可能发生的一种并发症是夜间缺乏氧气进口。如果具有COPD的人患有阻塞性睡眠呼吸暂停(OSA)睡眠障碍,这种情况将进一步加剧。在本研究中,我们使用信息增益特征选择来确定影响COPD患者中OSA风险的功能。在完成特征选择过程之后,我们使用随机森林方法来分类谁具有高风险,并且在COPD患者中具有较低的风险开发OSA。本研究中的样品由111名COPD患者组成,2018年3月至2018年5月在X医院住院了34名特征。从观察结果中,我们选择5%,10%,20%,30%,40%,50总特征的%,60%,70%,82%和100%最佳特征,最佳精度得到10%的最佳功能总特征(4个最佳功能),即85.71%,灵敏度和特异性为71.43%和92.86 % 分别。排名最高的功能是腰部大小。

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