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Efficient Ensemble Methods for Classification on Clear Cell Renal Cell Carcinoma Clinical Dataset

机译:透明细胞肾细胞癌临床数据集分类的有效集成方法

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Kidneys play an important role in human body. In essence, a kidney maintains homeostasis and removes harmful materials by making and ejecting a form of urine. Especially 2-3% of humans who have malignancies, also suffered a clear cell renal cell carcinoma (ccRCC) which is one kind of kidney diseases. When diagnosed early, this renal cell carcinoma can be easily treated with some incision surgical method. Nonetheless, some patients who cannot undergo incision surgery need a customized medical service. The ensemble method is usually used to improve the classification performance by combining classifier. For this reason, in this paper, we suggest an implementation of classification algorithm on clinical data to find important clinical factors for ccRCC using an ensemble method and compare the results with a recent work in the literature. The experimental results showed that classification with ensemble methods improved the classification result, especially bagging method.
机译:肾脏在人体中起重要作用。本质上,肾脏通过制造和排出某种形式的尿液来维持体内稳态并清除有害物质。尤其是患有恶性肿瘤的人类中有2-3%的人也患有透明细胞肾细胞癌(ccRCC),这是一种肾脏疾病。如果尽早诊断出该肾细胞癌,可以采用某种切口外科手术方法轻松治疗。但是,一些无法进行切口手术的患者需要定制的医疗服务。集成方法通常用于通过组合分类器来提高分类性能。因此,在本文中,我们建议对临床数据进行分类算法的实现,以使用集成方法找到ccRCC的重要临床因素,并将结果与​​文献中的最新工作进行比较。实验结果表明,采用集成方法进行分类可以改善分类结果,尤其是套袋法。

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