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STRUCTURED ADVERSARIAL TRAINING FOR NATURAL LANGUAGE MACHINE LEARNING TASKS

机译:用于自然语言机器学习任务的结构化对抗培训

摘要

A method includes obtaining first training data having multiple first linguistic samples. The method also includes generating second training data using the first training data and multiple symmetries. The symmetries identify how to modify the first linguistic samples while maintaining structural invariants within the first linguistic samples, and the second training data has multiple second linguistic samples. The method further includes training a machine learning model using at least the second training data. At least some of the second linguistic samples in the second training data are selected during the training based on a likelihood of being misclassified by the machine learning model.
机译:一种方法包括获得具有多个第一语言样本的第一训练数据。该方法还包括使用第一训练数据和多个对称生成第二训练数据。该对称识别如何修改第一语言样本,同时保持第一语言样本内的结构不变,第二训练数据具有多个第二语言样本。该方法还包括使用至少第二训练数据训练机器学习模型。在训练期间,基于机器学习模型被错误分类的可能性,在训练期间至少选择第二次训练数据中的至少一些第二语言样本。

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