Machine Learning Approaches for Lung Cancer Prediction

Alpre Emre Celik, Jawad Rasheed, Amani Yahyaoui
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引用次数: 5

Abstract

Cancer is a long-term, exhausting disease that requires changes in all living conditions of the patient and his/her environment. Although there are regional variations in deaths from all causes in the world, it is in the 3rd rank. Lung cancer is among the most frequent cancer kinds worldwide, regardless of male or female. Cancer is a preventable disease. To prevent a disease, it is necessary to know its causes and avoid them. The use of tobacco and tobacco products is the main risk factor for all cancers, especially lung cancer. Early diagnosis of cancer is lifesaving. According to the Turkish Respiratory Research Association, 200,000 people are diagnosed with cancer every year in our country. With the accelerated developments in technologies and the digitalization of health services, a large amount of cancer data has been collected and this data has been used by many researchers, especially in low and middle-income countries, to reduce the cost of tests used to predict different cancer types and to predict different cancer types. This article is exploited various machine learning algorithms for predicting lung cancer. Experimental results show that random forest performed better by attaining 96.08% accuracy.
肺癌预测的机器学习方法
癌症是一种长期的、令人筋疲力尽的疾病,需要改变病人的所有生活条件和他/她的环境。尽管在世界上各种原因造成的死亡人数存在区域差异,但它排在第三位。肺癌是世界上最常见的癌症之一,无论男性还是女性。癌症是可以预防的疾病。为了预防疾病,有必要了解其原因并避免它们。烟草和烟草制品的使用是所有癌症,特别是肺癌的主要危险因素。癌症的早期诊断可以挽救生命。根据土耳其呼吸研究协会的数据,我国每年有20万人被诊断出患有癌症。随着技术的加速发展和保健服务的数字化,已经收集了大量的癌症数据,许多研究人员,特别是低收入和中等收入国家的研究人员利用这些数据来降低用于预测不同癌症类型和预测不同癌症类型的检测费用。本文利用各种机器学习算法来预测肺癌。实验结果表明,随机森林的准确率达到96.08%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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