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DYNAMIC DATA SELECTION FOR A MACHINE LEARNING MODEL

机译:机器学习模型的动态数据选择

摘要

Embodiments implement a machine learning prediction model with dynamic data selection. A number of data predictions generated by a trained machine learning model can be accessed, where the data predictions include corresponding observed data. An accuracy for the machine learning model can be calculated based on the accessed number of data predictions and the corresponding observed data. The accessing and calculating can be iterated using a variable number of data predictions, where the variable number of data predictions is adjusted based on an action taken during a previous iteration, and, when the calculated accuracy fails to meet an accuracy criteria during a given iteration, a training for the machine learning model can be triggered.
机译:实施例实现具有动态数据选择的机器学习预测模型。 可以访问由培训的机器学习模型产生的许多数据预测,其中数据预测包括相应的观察数据。 可以基于所访问的数据预测数和相应的观察数据来计算机器学习模型的精度。 可以使用可变数量的数据预测来迭代访问和计算,其中基于在先前迭代期间拍摄的动作来调整可变数量的数据预测,并且当计算出的精度不能满足在给定迭代期间的准确性标准时 ,可以触发机器学习模型的培训。

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