在数学瘤学的机械学习的审查
John Metzcar1,2, Catherine R Jutzeler3,4, Paul Macklin1
1Intelligent Systems Engineering, Luddy School of Informatics, Computing, and Engineering, Bloomington, IN, United States.
Frontiers in immunology
|March 27, 2024
概括
机械学习将数学模型与用于瘤学的机器学习相结合. 本综述探讨了其在癌症研究中的状态,潜力和应用,为未来的合作提供了一个框架.
科学领域:
- 计算生物学 计算生物学
- 数学瘤学数学瘤学
- 人工智能在医学中的应用
背景情况:
- 机械学习将机械数学建模与数据驱动的机器/深度学习相结合.
- 这一跨学科领域在数学瘤学中越来越多地得到应用.
- 了解这些方法之间的协同作用对于推进癌症研究至关重要.
研究的目的:
- 审查目前瘤学机械学习的现状.
- 为机械学习在瘤学领域的未来发展提供视角.
- 突出协同潜力,并比较机械学习与纯数据驱动的方法.
主要方法:
- 机械学习被分为四种类型:顺序式,并行式,外在式和内在式.
- 讨论诸如物理信息神经网络,代孕模型学习和数字双胞胎等技术.
- 展示瘤学应用的示例,包括瘤反应预测和时间到事件建模.
主要成果:
- 该综述概述了机械学习和数据驱动方法在模型复杂性,数据需求,输出和可解释性方面的相似性和差异.
- 提出了一个对机械学习方法进行分类的框架.
- 证明了机械学习在解决诸如有限数据和瘤学模型透明度等挑战方面的潜力.
结论:
- 机械学习为解决瘤学的复杂问题提供了一个强大的框架.
- 拟议的分类和审查旨在促进数据驱动型和知识驱动型建模社区之间的协作.
- 进一步整合机械学习有望通过提高模型透明度和处理复杂数据来推动癌症研究.
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