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Implementation of partitional clustering on ILPD dataset to predict liver disorders

机译:在ILPD数据集上进行分区聚类以预测肝脏疾病

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Cluster Analysis methods are very important, popular data summarization techniques applied in diverse environments. These techniques retrieve the hidden patterns in large datasets in the form of characterized patterns which can be interpreted further in different contexts. Widespread use of medical information systems and explosive growth of medical databases require traditional manual data analysis coupled with efficient computer assisted analysis. Medical Diagnosis is a difficult process which needs proficiency as well as experience to cope with a disease. Data segmentation is an application in medical domain used to analyze patient records, disease trends and health care resource utilization, which in turn assist a physician in Medical Diagnosis. In the present paper a technique based on classification techniques is proposed to predict liver disorders accurately. The main objective is to examine whether the proposed method can obtain better prediction accuracy to traditional classification algorithms. The classification results using the proposed method are found to be very promising and accurate.
机译:聚类分析方法是非常重要的,广泛应用于各种环境中的流行的数据汇总技术。这些技术以特征模式的形式检索大型数据集中的隐藏模式,可以在不同的上下文中进一步解释这些模式。医疗信息系统的广泛使用和医疗数据库的爆炸性增长需要传统的手动数据分析以及有效的计算机辅助分析。医学诊断是一个困难的过程,需要熟练和经验来应对疾病。数据细分是医学领域中的一种应用程序,用于分析患者记录,疾病趋势和医疗保健资源利用,进而帮助医生进行医学诊断。在本文中,提出了一种基于分类技术的技术来准确预测肝脏疾病。主要目的是研究所提出的方法是否能够获得比传统分类算法更好的预测精度。发现使用所提出的方法的分类结果是非常有前途的和准确的。

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