宫颈癌分类中天真的代谢

Fari Katul Fikriah
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引用次数: 0

摘要

对妇女来说有几种致命的疾病,其中之一是服务性癌症。疾病的生长和发展是非常缓慢的,所以如果从一开始就知道治疗会促进愈合过程,但相反,从一开始就不知道的癌症会因为相对难以愈合而成为危险和致命的疾病。活组织检查是检测癌症存在的一种方法。在之前的研究中,使用几种特征选择技术的决策树方法对宫颈癌进行分类,准确率最高,达到97,515%。因此,本研究将使用决策树或树C4.5分类方法、logistic函数和zeroR等先前使用Naïve贝叶斯进行实例选择处理的方法,减少缺失值的消除,以期比以往的研究更好地提高准确率水平。与其他分类方法相比,本研究的C4.5分类结果最大,准确率值为99.69%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Instance Selection dengan Naïve Bayes pada Klasifikasi Kanker Serviks
There are several deadly disease for woman, one of which is servical cancer. The growth and development of the disease is very slow, so that treatment if know form the beginning will facilitate the healing process, but conversely unknown cancers from the beginning will become dangereous and deadly disease due to relatively difficult healing. Biopsy action is one way to detect the presence of cancer. In the previous study, classification of cervical cancer had the bighest accuracy value of 97,515% using the decision tree method of several feature selection technique. for this reason, this research will use the decision tree or tree C4.5 classification method, logistic function and zeroR which were previously carried out processing with instance selection with Naïve Bayes by reducing the elimination of missing values with the aim of increasing the level of accuracy better than previous studies. C4.5 classification in this study has the most maximum results compared to other classification methods with an accuracy value of 99,69%.
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