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ArgDiver: Generating Sentential Arguments from Diverse Perspectives on Controversial Topic

机译:ArgDiver:从有争议的主题的不同角度生成句子参数

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Considering diverse aspects of an argumentative issue is an essential step for mitigating a biased opinion and making reasonable decisions. A related generation model can produce flexible results that cover a wide range of topics, compared to the retrieval-based method that may show unstable performance for unseen data. In this paper, we study the problem of generating sentential arguments from multiple perspectives, and propose a neural method to address this problem. Our model, ArgDiver (Argument generation model from Diverse perspectives), in a way a conversational system, successfully generates high-quality sentential arguments. At the same time, the automatically generated arguments by our model show a higher diversity than those generated by any other baseline models. We believe that our work provides evidence for the potential of a good generation model in providing diverse perspectives on a controversial topic.
机译:考虑争论性问题的各个方面是缓解有偏见的意见和做出合理决定的必不可少的步骤。与基于检索的方法相比,相关的生成模型可以产生涵盖广泛主题的灵活结果,而基于检索的方法对于看不见的数据可能表现出不稳定的性能。在本文中,我们从多个角度研究了生成句子自变量的问题,并提出了一种解决该问题的神经方法。我们的模型ArgDiver(来自不同视角的参数生成模型)以一种对话系统的方式成功地生成了高质量的句子参数。同时,我们的模型自动生成的自变量显示出比其他任何基线模型所生成的自变量更高的多样性。我们相信,我们的工作为有争议的主题提供了多种观点,从而证明了良好一代模型的潜力。

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