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METHOD AND DEVICE FOR REINFORCEMENT OF MULTIPLE CHOICE QA MODEL BASED ON ADVERSARIAL LEARNING TECHNIQUES

机译:基于对抗式学习技术的多项选择问答模型的增强方法和装置

摘要

The present invention relates to a method for reinforcing a multiple-choice QA model based on adversarial learning techniques, wherein incorrect answers are further generated based on a data set used in the process of training the multiple-choice QA model to enrich data which are learnable by the multiple-choice QA model. To achieve this object, the method includes step A of an incorrect answer generation model encoding a text based on natural language text and a question, generating a second incorrect answer based on the text and the question, and transmitting the second incorrect answer to an incorrect answer test model, step B of the incorrect answer test model encoding the text, the question, a first correct answer corresponding to the text and the question, a first incorrect answer and the second incorrect answer, and selecting a second correct answer based on results of the encoding, step C of the incorrect answer test model generating a feedback by determining whether the first correct answer is identical to the second correct answer, and step D of the incorrect answer generation model and the incorrect answer test model performing self-learning based on the feedback.
机译:本发明涉及一种用于增强基于对抗性学习技术的多项选择QA模型的方法,其中基于在训练多项选择QA模型的过程中使用的数据集进一步生成错误答案,以丰富可由多项选择QA模型学习的数据。为了实现该目标,该方法包括错误答案生成模型的步骤A,该错误答案生成模型基于自然语言文本和问题编码文本,基于文本和问题生成第二个错误答案,并将第二个错误答案传输到错误答案测试模型,错误答案测试模型的步骤B,该错误答案测试模型编码文本、问题,对应于文本和问题的第一个正确答案、第一个错误答案和第二个错误答案,并根据编码结果选择第二个正确答案,错误答案测试模型的步骤C通过确定第一个正确答案是否与第二个正确答案相同来生成反馈,以及错误答案生成模型和错误答案测试模型的步骤D,其基于反馈执行自学习。

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