基于风险因素规范的数据挖掘技术分析贫血

Mohammed Sami Mohammed, Arshed A. Ahmad, Murat Sari
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引用次数: 5

摘要

健康红细胞(RBC)的缺乏会导致输送到整个血液组织的氧气不足。许多原因导致像铁或维生素缺乏这样的问题,即贫血。孕妇、6岁以下儿童、低维生素饮食的人以及因手术或受伤而失血的人都有患贫血的风险。这种疾病可以通过一种叫做全血细胞计数(CBC)的血液检查来诊断,该检查评估患者血液中的血红蛋白水平。未确诊或未治疗的疾病,如贫血,会导致严重疲劳和妊娠并发症等健康问题。不同类型的贫血,特别是与铁或维生素缺乏有关的贫血,可以得到改善,特别是在早期发现。本文采用贝叶斯网络(BN)、朴素贝叶斯(NB)、逻辑回归(LR)和多层感知器(MLP)四种技术,基于实验室收集的539个数据(10个属性)进行贫血预测。与其他考虑的技术相比,LR提供了更好的结果。此外,还应用了信息增益等属性评估器来证明系统在最小特征下的高性能。
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Analysis of Anemia Using Data Mining Techniques with Risk Factors Specification
Deficiency in healthy Red Blood Cells (RBC) leads to insufficient oxygen to be carried to whole blood tissues. Many reasons cause such an issue like iron or vitamin deficiency which is known as Anemia. Pregnant women, children under the age of 6, people with a low vitamin diet and losing their blood due to surgery or injury are at risk that will tend to have anemia. Such a disease can be diagnosed by blood test called Complete Blood Count (CBC), which evaluates Hemoglobin levels of patient’s blood. Undiagnosed or untreated left disease, such as anemia, can cause health problems such as severe fatigue and pregnancy complications. Different types of anemia, especially those associated with iron or vitamin deficiency, can be ameliorated, especially when detected at an early stage. In this paper, four techniques, Bayesian Network (BN), Naive Bayes (NB), Logistic Regression (LR) and Multilayer Perceptron (MLP) have been applied to predict anemia based on 539 data, with 10 attributes, collected from laboratories. The LR has given better results compared to other considered techniques. In addition, attribute evaluators such as information gain have been applied to demonstrate the high performance of the system with minimum characteristics.
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