科学机器学习的兴起:关于将机械模型与系统生物学机器学习相结合的观点
Ben Noordijk1,2, Monica L Garcia Gomez2,3, Kirsten H W J Ten Tusscher2,3
1Bioinformatics Group, Wageningen University and Research, Wageningen, Netherlands.
科学机器学习 (SciML) 集成了系统生物学的机器学习和机械建模. 将这些方法结合起来,可以利用它们的互补优势,获得更深入的生物学见解和预测.
科学领域:
- 系统生物学 系统生物学
- 计算生物学 计算生物学
- 生物信息学是一种生物信息学.
背景情况:
- 机器学习 (ML) 在数据驱动的模式识别和预测方面表现出色.
- 机械模型捕捉生物知识并推断因果关系.
- 机器学习和机械模型的独立应用在系统生物学中取得了重大成功.
研究的目的:
- 审查最近在系统生物学中整合ML和机械建模方面的进展.
- 突出结合这两种强大的方法的协同潜力.
- 确定生物科学中科学机器学习 (SciML) 的未来研究方向.
主要方法:
- 关于机器学习和机械模型集成的最新文献的综述.
- 讨论每个方法的互补优点和弱点.
- 探索新兴的科学机器学习 (SciML) 领域.
主要成果:
- 机器学习和机械建模的整合,称为SciML,比单个方法提供了实质性的收益.
- 科学ML增强了在生物系统中推断统计关系和推断因果机制的能力.
- 最近的进展表明,SciML在系统生物学中的应用性和成功性日益增长.
结论:
- 结合ML和机械建模 (SciML) 是系统生物学的一个有希望的前沿.
- SciML为理解复杂的生物现象提供了一个强大的框架.
- 预计SciML在生物科学中的未来应用将是广泛和有影响的.
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