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Multitask Learning As Question Answering

机译:多任务学习作为问答

摘要

Approaches for multitask learning as question answering include a method for training that includes receiving a plurality of training samples including training samples from a plurality of task types, presenting the training samples to a neural model to generate an answer, determining an error between the generated answer and the natural language ground truth answer for each training sample presented, and adjusting parameters of the neural model based on the error. Each of the training samples includes a natural language context, question, and ground truth answer. An order in which the training samples are presented to the neural model includes initially selecting the training samples according to a first training strategy and switching to selecting the training samples according to a second training strategy. In some embodiments the first training strategy is a sequential training strategy and the second training strategy is a joint training strategy.
机译:用于多任务学习作为问题回答的方法包括一种训练方法,该方法包括:接收包括来自多个任务类型的训练样本在内的多个训练样本,将训练样本呈现给神经模型以生成答案,确定所生成的答案之间的错误。给出的每个训练样本的自然语言地面真相答案,并根据误差调整神经模型的参数。每个训练样本都包括自然语言环境,问题和基本事实答案。将训练样本呈现给神经模型的顺序包括根据第一训练策略初始选择训练样本,并根据第二训练策略切换为选择训练样本。在一些实施例中,第一训练策略是顺序训练策略,第二训练策略是联合训练策略。

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