![]() Action sequences are better predicted when the character performing the action is also taken into account, and vice versa for character attributes. Using neural language models which combine character and action descriptions from these stories, we show that we can learn the latent ties. ![]() We propose role-playing games as a testbed for this problem, and introduce a large corpus of game transcripts collected from online discussion forums. ![]() We examine whether computational models can capture this interaction, when both character attributes and actions are expressed as complex natural language descriptions. Abstract An essential aspect to understanding narratives is to grasp the interaction between characters in a story and the actions they take. ![]()
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