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Automatic Creation of Machine Learning Workflows with Strongly Typed Genetic Programming

机译:自动创建机器学习工作流程,具有强类型遗传编程

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Manual creation of machine learning ensembles is a hard and tedious task which requires an expert and a lot of time. In this work we describe a new version of the GP-ML algorithm which uses genetic programming to create machine learning workows (combinations of preprocessing, classification, and ensembles) automatically, using strongly typed genetic programming and asynchronous evolution. The current version improves the way in which the individuals in the genetic programming are created and allows for much larger workows. Additionally, we added new machine learning methods. The algorithm is compared to the grid search of the base methods and to its previous versions on a set of problems from the UCI machine learning repository.
机译:手动创建机器学习合奏是一种艰难而繁琐的任务,需要专家和很多时间。 在这项工作中,我们描述了一种新版本的GP-ML算法,它使用基因编程创建机器学习摩擦(预处理,分类和集合的组合),使用强类型的遗传编程和异步演化。 当前版本提高了创建了遗传编程中的个人的方式,并允许更大的较大摩擦。 此外,我们添加了新的机器学习方法。 将该算法与基础方法的网格搜索和其先前版本进行比较,从UCI机器学习存储库一组问题上。

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