Papers by Manuel Milling

1 papers
Modeling Emotional Trajectories in Written Stories Utilizing Transformers and Weakly-Supervised Learning (2024.findings-acl)

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Challenge: Existing work on how to model emotionality in stories has been limited to dictionary-based methods .
Approach: They propose to introduce continuous valence and arousal labels for an existing dataset of children’s stories originally annotated with discrete emotion categories.
Outcome: The proposed model achieves a Concordance Correlation Coefficient (CCC) of .8221 for valence and .7125 for arousal on the test set, demonstrating the efficacy of the proposed model.

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