机器学习方法预测癌症患者的症状:系统性审查
Nahid Zeinali1, Nayung Youn2, Alaa Albashayreh2
1Department of Computer Science and Informatics, University of Iowa, Iowa City, IA, United States.
JMIR cancer
|March 19, 2024
概括
机器学习 (ML) 使用各种算法有效预测癌症症状,后勤回归和随机森林表现出强的表现. 未来的研究应该探索先进的ML方法,以提高症状预测的精度.
科学领域:
- 在瘤学瘤学.
- 生物医学信息学 生物医学信息学
- 数据科学数据科学数据科学
背景情况:
- 癌症患者经常经历令人痛苦的症状,这对预测构成了重大挑战.
- 机器学习 (ML) 的进步需要对其在癌症症状预测中的应用进行审查.
研究的目的:
- 系统地审查有关用于预测癌症症状的ML算法的文献.
- 确定与癌症症状发展相关的关键预测因素.
主要方法:
- 进行了对CINAHL,Embase和PubMed (1984-2023) 的系统搜索.
- 研究使用了与癌症,症状和各种ML算法相关的关键词.
- 资格标准集中在预测癌症症状的ML研究上,不包括非人类研究和评论.
主要成果:
- 包括42项研究,大多数是在2017年之后发表的,重点是北美和亚洲.
- 监督ML是普遍存在的 (93%),后勤回归和随机森林是高性能算法.
- 常见的预测症状包括异口症,抑郁症,疼痛和疲劳,年龄,性别和治疗因素作为重要预测因素.
结论:
- 本综述强调了用于癌症症状预测的ML算法,强调了需要处理复杂关系的方法.
- 针对特定症状量身定制算法,并将先进的ML与传统模型进行比较,对于未来的研究至关重要.
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