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Hannah Rashkin; Antoine Bosselut; Maarten Sap; Kevin Knight; Yejin Choi

Abstract
Understanding a narrative requires reading between the lines and reasoning about the unspoken but obvious implications about events and people's mental states - a capability that is trivial for humans but remarkably hard for machines. To facilitate research addressing this challenge, we introduce a new annotation framework to explain naive psychology of story characters as fully-specified chains of mental states with respect to motivations and emotional reactions. Our work presents a new large-scale dataset with rich low-level annotations and establishes baseline performance on several new tasks, suggesting avenues for future research.
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| emotion-classification-on-rocstories | NPN + Explanation Training | F1: 30.29 |
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