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Guiding the Growth: Difficulty-Controllable Question Generation through Step-by-Step Rewriting

机译:指导增长:通过逐步重写生成难度控制的问题

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This paper explores the task of Difficulty-Controllable Question Generation (DCQG), which aims at generating questions with required difficulty levels. Previous research on this lask mainly delines the difficulty of a question as whether it can be correctly answered by a Question Answering (QA) system, lacking interpretability and controllability. In our work, we redefine question difficulty as the number of inference steps required to answer it and argue that Question Generation (QG) systems should have stronger control over the logic of generated questions. To this end, we propose a novel framework that progressively increases question difficulty through step-by-step rewriting under the guidance of an extracted reasoning chain. A dataset is automatically constructed to facilitate the research, on which extensive experiments are conducted to test the performance of our method.
机译:本文探讨了难以控制的问题生成(DCQG)的任务,旨在产生所需难度级别的问题。 以前关于这个Lask的研究主要取代了一个问题的难度,以及是否可以通过问题应答(QA)系统正确回答,缺乏可解释性和可控性。 在我们的工作中,我们重新定义了问题难度作为回答它所需的推理步骤的数量并争论问题生成(QG)系统应该更强地控制所生成的问题的逻辑。 为此,我们提出了一种新颖的框架,通过在提取的推理链的指导下通过逐步重写来逐步提高问题难以提高问题。 数据集自动构建以促进研究,在进行广泛的实验,以测试我们的方法的性能。

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