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How to Handle Error Bars in Symbolic Regression for Data Mining in Scientific Applications

机译:在科学应用中如何处理符号回归中的错误条以进行数据挖掘

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摘要

Symbolic regression via genetic programming has become a very useful tool for the exploration of large databases for scientific purposes. The technique allows testing hundreds of thousands of mathematical models to find the most adequate to describe the phenomenon under study, given the data available. In this paper, a major refinement is described, which allows handling the problem of the error bars. In particular, it is shown how the use of the geodesic distance on Gaussian manifolds as fitness function allows taking into account the uncertainties in the data, from the beginning of the data analysis process. To exemplify the importance of this development, the proposed methodological improvement has been applied to a set of synthetic data and the results have been compared with more traditional solutions.
机译:通过基因编程进行符号回归已成为探索大型数据库以用于科学目的的非常有用的工具。该技术允许测试成千上万的数学模型,以找到最能描述所研究现象的模型,只要有可用数据即可。在本文中,对主要改进进行了描述,它可以处理误差条的问题。特别是,从数据分析过程开始,就说明了如何将高斯流形上的测地距离用作适应度函数,从而考虑到数据中的不确定性。为了说明这一发展的重要性,已将所提出的方法学改进应用于一组综合数据,并将结果与​​更传统的解决方案进行了比较。

著录项

  • 来源
  • 会议地点 Egham(GB)
  • 作者单位

    Consorzio RFX-Associazione EURATOM-ENEA per la Fusione, Corso Stati Uniti, 4, 35127 Padova, Italy;

    Associazione EURATOM-ENEA - University of Rome 'Tor Vergata', Via del Politecnico 1, 00133 Rome, Italy;

    Associazione EURATOM-ENEA - University of Rome 'Tor Vergata', Via del Politecnico 1, 00133 Rome, Italy;

    Associazione EURATOM-ENEA - University of Rome 'Tor Vergata', Via del Politecnico 1, 00133 Rome, Italy;

    Associazione EURATOM-ENEA - University of Rome 'Tor Vergata', Via del Politecnico 1, 00133 Rome, Italy;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Genetic programming; Symbolic regression; Geodesic distance; Scaling laws;

    机译:基因编程;符号回归;测地距离缩放定律;

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