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Modeling Protagonist Emotions for Emotion-Aware Storytelling

机译:对情感感知讲故事的主角情绪建模

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Emotions and their evolution play a central role in creating a captivating story. In this paper, we present the first study on modeling the emotional trajectory of the protagonist in neural storytelling. We design methods that generate stories that adhere to given story titles and desired emotion arcs for the protagonist. Our models include Emotion Supervision (Emo-Sup) and two Emotion-Reinforced (EmoRL) models. The EmoRL models use special rewards designed to regularize the story generation process through reinforcement learning. Our automatic and manual evaluations demonstrate that these models are significantly better at generating stories that follow the desired emotion arcs compared to baseline methods, without sacrificing story quality.
机译:情绪和他们的进化在创造一个迷人的故事方面发挥着核心作用。在本文中,我们提出了一种在神经讲故事中建模主角的情感轨迹的第一研究。我们设计制造故事的方法,遵守给定的故事标题和主角的所需情绪弧。我们的型号包括情感监督(EMO-SUP)和两种情感增强(EMOORL)模型。 Emorl模型使用特殊奖励,旨在通过加强学习来规范故事生成过程。我们的自动和手动评估表明,与基线方法相比,这些模型在产生遵循所需情绪弧的故事时显着更好,而不会牺牲故事质量。

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