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META-AUTOMATED MACHINE LEARNING WITH IMPROVED MULTI-ARMED BANDIT ALGORITHM FOR SELECTING AND TUNING A MACHINE LEARNING ALGORITHM
META-AUTOMATED MACHINE LEARNING WITH IMPROVED MULTI-ARMED BANDIT ALGORITHM FOR SELECTING AND TUNING A MACHINE LEARNING ALGORITHM
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机译:元自动化机器学习,采用改进的多武装强盗算法选择和调整机器学习算法
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摘要
A method for automatically selecting a machine learning algorithm and tuning hyperparameters of the machine learning algorithm includes receiving a dataset and a machine learning task from a user. Execution of a plurality of instantiations of different automated machine learning frameworks on the machine learning task are controlled each as a separate arm in consideration of available computational resources and time budget, whereby, during the execution by the separate arms, a plurality of machine learning models are trained and performance scores of the plurality of trained models are computed. One or more of the plurality of trained models are selected for the machine learning task based on the performance scores.
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