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Godfrey2712/amf_illoc_force_intent_recognition

sourceHugging Facemitupdated 6mo agoView on Hugging Face
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This model can be used to classify communicative intentions in Dialogue. It takes a single sentence/utterance as input and returns an illocutionary force label.

Below are the labels used to fine-tune a RoBERTa-large model:

"0": "Agreeing", "1": "Arguing", "2": "Asserting", "3": "Assertive Questioning", "4": "Challenging", "5": "Default Illocuting", "6": "Disagreeing", "7": "Pure Questioning", "8": "Restating", "9": "Rhetorical Questioning"

F1_macro - 0.55

F1_weighted - 0.67

Accuracy - 0.67

These are the links to the Datasets used:

MM2012 - https://corpora.aifdb.org/mm2012

MM123 - https://corpora.aifdb.org/mm123

QT30 - https://corpora.aifdb.org/qt30

US2016 - https://corpora.aifdb.org/US2016

precisionrecallf1-scoresupport
Agreeing0.630.670.6518
Arguing0.670.400.505
Asserting0.790.890.84200
Assertive Questioning0.520.440.48124
Challenging0.480.420.4424
Default Illocuting1.000.070.1314
Disagreeing0.330.400.365
Pure Questioning0.750.760.76293
Restating1.001.001.002
Rhetorical Questioning0.360.400.3881
accuracy0.67766
macro avg0.650.540.55766
weighted avg0.670.670.67766

The data preprocessing and fine-tuning technique can be found here: https://discovery.dundee.ac.uk/en/studentTheses/exploiting-illocutionary-forces-in-dialogue-structures-for-enhanc/

Citation:

Inyama, G. (2025). Exploiting Illocutionary Forces in Dialogue Structures for Enhancing Authorship Identification [Master of Philosophy thesis, University of Dundee]. Discovery - the University of Dundee Research Portal. https://doi.org/10.15132/20000713