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Oral cancer detection using data mining tool

机译:使用数据挖掘工具进行口腔癌检测

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Previously cancer was an incurable disease, but now with the advancement in technology it has been successful in becoming a curable disease. Oral cancer is the unstoppable increase in the number of cells or mutation that is formed and has the capability to affect the neighboring tissues. In this paper different algorithms of data mining will be used to detect oral cancer. Data mining is referred to a prominent technique employed by various health institutions for classification of life threatening diseases, e.g. cancer, dengue and tuberculosis. In our proposed approach WEKA is applied with ten cross validation to calculate and collate output. WEKA consists of a large variety of data mining machine learning algorithms. First we have classified the oral cancer dataset and then analyzed various data mining methods in WEKA through Explorer and Experiment interfaces. The prime aim is to classify the dataset and help to collect useful material from the data and comfortably choose an appropriate algorithm for accurate prognostic model from it.
机译:以前,癌症是无法治愈的疾病,但是现在,随着技术的进步,它已成功地成为可治愈的疾病。口腔癌是所形成的细胞数量或突变数量的不可阻挡的增长,并且具有影响邻近组织的能力。在本文中,将使用不同的数据挖掘算法来检测口腔癌。数据挖掘是指各种医疗机构采用的一项重要技术,用于对生命危险性疾病进行分类,例如癌症,登革热和肺结核。在我们提出的方法中,将WEKA与十个交叉验证一起应用以计算和整理输出。 WEKA包含多种数据挖掘机器学习算法。首先,我们对口腔癌数据集进行了分类,然后通过“资源管理器”和“实验”界面分析了WEKA中的各种数据挖掘方法。主要目的是对数据集进行分类,并帮助从数据中收集有用的材料,并从中轻松地选择合适的算法以建立准确的预测模型。

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