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UPDATING TRAINING EXAMPLES FOR ARTIFICIAL INTELLIGENCE

机译:更新人工智能的培训例

摘要

Techniques for adapting previously-annotated training examples into updated training examples for training a machine learning model are disclosed. One example includes a computer program that recognizes a find expression, a replacement expression, and a filtering constraint in which the filtering constraint distinguishes a subset of previously-annotated training examples from others of the previously-annotated training examples. An instance of the find expression is identified by the computer program within the subset of the previously-annotated training examples that were identified among the previously-annotated training examples based on the filtering constraint. The instance of the find expression identified within the subset of the previously-annotated training examples is replaced by the computer program with an instance of the replacement expression to obtain an updated subset of training examples. The updated subset of training examples is output by the computer program, which may be used for training a machine learning model.
机译:公开了在更新用于训练机器学习模型的更新训练示例中调整先前注释的训练示例的技术。一个示例包括识别出识别表达式,替换表达式和过滤约束的计算机程序,其中滤波约束区分先前注释的训练示例的其他其他训练示例的子集。在先前注释的训练示例的子集内由先前注释的训练示例的子集内识别了查找表达式的实例,其基于过滤约束在先前注释的训练示例中识别。在先前注释的训练示例的子集内识别的查找表达式的实例由计算机程序用替换表达式的实例替换,以获得更新的训练示例子集。计算机程序输出更新的训练示例子集,其可用于训练机器学习模型。

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