Richard Frost
2025
MRS at SemEval-2025 Task 11: A Hybrid Approach for Bridging the Gap in Text-Based Emotion Detection
Milad Afshari
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Richard Frost
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Samantha Kissel
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Kristen Johnson
Proceedings of the 19th International Workshop on Semantic Evaluation (SemEval-2025)
We tackle the challenge of multi-label emotion detection in short texts, focusing on SemEval-2025 Task 11 Track A. Our approach, RoEmo, combines generative and discriminative models in an ensemble strategy to classify texts into five emotions: anger, fear, joy, sadness, and surprise.The generative model, instruction-finetuned on emotion detection datasets, undergoes additional fine-tuning on the SemEval-2025 Task 11 Track A dataset to enhance its performance for this specific task. Meanwhile, the discriminative model, based on binary classification, offers a straightforward yet effective approach to classification.We review recent advancements in multi-label emotion detection and analyze the task dataset. Our results show that RoEmo ranks among the top-performing systems, demonstrating high accuracy and reliability.
2007
Modular and Efficient Top-Down Parsing for Ambiguous Left-Recursive Grammars
Richard Frost
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Rahmatullah Hafiz
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Paul Callaghan
Proceedings of the Tenth International Conference on Parsing Technologies